[{"id":297,"uid":"NPDI-Bi2fGw","name":"CYP3A4 Experiment","overallEffect":1,"isControlData":false,"isIc50Shift":false,"croCutoff":null,"croIdentifier":null,"comment":null,"experimentalConditionsComment":null,"resultsComment":null,"internalComment":null,"objectCompoundId":26,"objectMetaboliteCompoundId":null,"precipitantCompoundId":127,"cytochromeB5Id":null,"studyId":73,"experimentTypeId":9,"testSystemId":null,"ic50ShiftExperimentId":null,"controlDataExperimentId":null,"controlDataForExperimentId":null,"naturalProductSampleId":null,"experimentType.id":9,"experimentType.name":"In Vivo Interaction","experimentType.isInVitro":false,"experimentType.isTransporter":false,"experimentType.isEnzyme":false,"experimentType.purl":"http://purl.obolibrary.org/obo/DIDEO_00000071","objectCompound.id":26,"objectCompound.name":"midazolam","objectCompound.unii":"R60L0SM5BC","objectCompound.inChIKey":"DDLIGBOFAVUZHB-UHFFFAOYSA-N","objectCompound.publicDescription":null,"objectCompound.internalComment":null,"objectCompound.conceptId":708298,"objectCompound.enantiomerOfId":null,"objectCompound.concept.conceptId":708298,"objectCompound.concept.conceptName":"Midazolam","objectCompound.concept.domainId":"Drug","objectCompound.concept.vocabularyId":"RxNorm","objectCompound.concept.conceptClassId":"Ingredient","objectCompound.concept.standardConcept":"S","objectCompound.concept.conceptCode":"6960","objectCompound.concept.validStartDate":"1970-01-01T00:00:00.000Z","objectCompound.concept.validEndDate":"2099-12-31T00:00:00.000Z","objectCompound.concept.invalid_reason":null,"precipitantCompound.id":127,"precipitantCompound.name":"goldenseal root extract","precipitantCompound.unii":null,"precipitantCompound.inChIKey":null,"precipitantCompound.publicDescription":null,"precipitantCompound.internalComment":null,"precipitantCompound.conceptId":null,"precipitantCompound.enantiomerOfId":null,"precipitantCompound.concept.conceptId":null,"precipitantCompound.concept.conceptName":null,"precipitantCompound.concept.domainId":null,"precipitantCompound.concept.vocabularyId":null,"precipitantCompound.concept.conceptClassId":null,"precipitantCompound.concept.standardConcept":null,"precipitantCompound.concept.conceptCode":null,"precipitantCompound.concept.validStartDate":null,"precipitantCompound.concept.validEndDate":null,"precipitantCompound.concept.invalid_reason":null,"objectMetaboliteCompound.id":null,"objectMetaboliteCompound.name":null,"objectMetaboliteCompound.unii":null,"objectMetaboliteCompound.inChIKey":null,"objectMetaboliteCompound.publicDescription":null,"objectMetaboliteCompound.internalComment":null,"objectMetaboliteCompound.conceptId":null,"objectMetaboliteCompound.enantiomerOfId":null,"objectMetaboliteCompound.concept.conceptId":null,"objectMetaboliteCompound.concept.conceptName":null,"objectMetaboliteCompound.concept.domainId":null,"objectMetaboliteCompound.concept.vocabularyId":null,"objectMetaboliteCompound.concept.conceptClassId":null,"objectMetaboliteCompound.concept.standardConcept":null,"objectMetaboliteCompound.concept.conceptCode":null,"objectMetaboliteCompound.concept.validStartDate":null,"objectMetaboliteCompound.concept.validEndDate":null,"objectMetaboliteCompound.concept.invalid_reason":null,"enzymes.id":13,"enzymes.name":"CYP3A4","enzymes.conceptId":4306811,"enzymes.experiment_enzyme_xref.enzymeId":13,"enzymes.experiment_enzyme_xref.experimentId":297,"transporters.id":null,"transporters.name":null,"transporters.conceptId":null,"transporters.experiment_transporter_xref.experimentId":null,"transporters.experiment_transporter_xref.transporterId":null,"quantifiedMetabolites.id":null,"quantifiedMetabolites.name":null,"quantifiedMetabolites.unii":null,"quantifiedMetabolites.inChIKey":null,"quantifiedMetabolites.publicDescription":null,"quantifiedMetabolites.internalComment":null,"quantifiedMetabolites.conceptId":null,"quantifiedMetabolites.enantiomerOfId":null,"quantifiedMetabolites.experiment_quantified_metabolite_xref.com":null,"quantifiedMetabolites.experiment_quantified_metabolite_xref.exp":null,"study.id":73,"study.uid":"NPDI-ftEv0g","study.name":"In vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis canadensis","study.naturalProduct.name":"Goldenseal","study.naturalProduct.itis":null,"study.naturalProduct.srs":"66690655-f406-4d67-96e3-2066aafee8d5","study.naturalProduct.source_id":"","study.naturalProduct.conceptId":null,"study.naturalProduct.concept.conceptId":null,"study.naturalProduct.concept.conceptName":null,"study.naturalProduct.concept.domainId":null,"study.naturalProduct.concept.vocabularyId":null,"study.naturalProduct.concept.conceptClassId":null,"study.naturalProduct.concept.standardConcept":null,"study.naturalProduct.concept.conceptCode":null,"study.naturalProduct.concept.validStartDate":null,"study.naturalProduct.concept.validEndDate":null,"study.naturalProduct.concept.invalid_reason":null,"study.compound.id":null,"study.compound.name":null,"study.compound.unii":null,"study.compound.inChIKey":null,"study.compound.publicDescription":null,"study.compound.internalComment":null,"study.compound.conceptId":null,"study.compound.enantiomerOfId":null,"study.studySourceType.id":1,"study.studySourceType.name":"Published report","testSystem.id":null,"testSystem.name":null,"testSystem.sortOrder":null,"testSystem.conceptId":null,"testSystem.categoryId":null,"testSystem.category.id":null,"testSystem.category.name":null,"testSystem.category.sortOrder":null,"testSystem.category.requiresCytochromeB5":null,"cytochromeB5.id":null,"cytochromeB5.name":null,"cytochromeB5.sortOrder":null,"cytochromeB5.conceptId":null,"controlDataExperiment.id":null,"controlDataExperiment.uid":null,"controlDataExperiment.name":null,"controlDataExperiment.overallEffect":null,"controlDataExperiment.isControlData":null,"controlDataExperiment.isIc50Shift":null,"controlDataExperiment.croCutoff":null,"controlDataExperiment.croIdentifier":null,"controlDataExperiment.comment":null,"controlDataExperiment.experimentalConditionsComment":null,"controlDataExperiment.resultsComment":null,"controlDataExperiment.internalComment":null,"controlDataExperiment.objectCompoundId":null,"controlDataExperiment.objectMetaboliteCompoundId":null,"controlDataExperiment.precipitantCompoundId":null,"controlDataExperiment.cytochromeB5Id":null,"controlDataExperiment.studyId":null,"controlDataExperiment.experimentTypeId":null,"controlDataExperiment.testSystemId":null,"controlDataExperiment.ic50ShiftExperimentId":null,"controlDataExperiment.controlDataExperimentId":null,"controlDataExperiment.controlDataForExperimentId":null,"controlDataExperiment.naturalProductSampleId":null,"controlDataExperiment.experimentType.id":null,"controlDataExperiment.experimentType.name":null,"controlDataExperiment.experimentType.isInVitro":null,"controlDataExperiment.experimentType.isTransporter":null,"controlDataExperiment.experimentType.isEnzyme":null,"controlDataExperiment.experimentType.purl":null,"controlDataExperiment.objectCompound.id":null,"controlDataExperiment.objectCompound.name":null,"controlDataExperiment.objectCompound.unii":null,"controlDataExperiment.objectCompound.inChIKey":null,"controlDataExperiment.objectCompound.publicDescription":null,"controlDataExperiment.objectCompound.internalComment":null,"controlDataExperiment.objectCompound.conceptId":null,"controlDataExperiment.objectCompound.enantiomerOfId":null,"controlDataExperiment.precipitantCompound.id":null,"controlDataExperiment.precipitantCompound.name":null,"controlDataExperiment.precipitantCompound.unii":null,"controlDataExperiment.precipitantCompound.inChIKey":null,"controlDataExperiment.precipitantCompound.publicDescription":null,"controlDataExperiment.precipitantCompound.internalComment":null,"controlDataExperiment.precipitantCompound.conceptId":null,"controlDataExperiment.precipitantCompound.enantiomerOfId":null,"controlDataExperiment.objectMetaboliteCompound.id":null,"controlDataExperiment.objectMetaboliteCompound.name":null,"controlDataExperiment.objectMetaboliteCompound.unii":null,"controlDataExperiment.objectMetaboliteCompound.inChIKey":null,"controlDataExperiment.objectMetaboliteCompound.publicDescriptio":null,"controlDataExperiment.objectMetaboliteCompound.internalComment":null,"controlDataExperiment.objectMetaboliteCompound.conceptId":null,"controlDataExperiment.objectMetaboliteCompound.enantiomerOfId":null,"controlDataExperiment.enzymes.id":null,"controlDataExperiment.enzymes.name":null,"controlDataExperiment.enzymes.conceptId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.enzymeId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.experiment":null,"controlDataExperiment.transporters.id":null,"controlDataExperiment.transporters.name":null,"controlDataExperiment.transporters.conceptId":null,"controlDataExperiment.transporters.experiment_transporter_xref.":null,"controlDataExperiment.quantifiedMetabolites.id":null,"controlDataExperiment.quantifiedMetabolites.name":null,"controlDataExperiment.quantifiedMetabolites.unii":null,"controlDataExperiment.quantifiedMetabolites.inChIKey":null,"controlDataExperiment.quantifiedMetabolites.publicDescription":null,"controlDataExperiment.quantifiedMetabolites.internalComment":null,"controlDataExperiment.quantifiedMetabolites.conceptId":null,"controlDataExperiment.quantifiedMetabolites.enantiomerOfId":null,"controlDataExperiment.quantifiedMetabolites.experiment_quantifi":null,"experimentAnswers.id":7009,"experimentAnswers.text":null,"experimentAnswers.answerId":100,"experimentAnswers.experimentId":297,"experimentAnswers.questionId":100,"experimentAnswers.question.id":100,"experimentAnswers.question.text":"Study design","experimentAnswers.question.required":true,"experimentAnswers.question.maxAnswers":100,"experimentAnswers.question.type":null,"experimentAnswers.question.conceptId":null,"experimentAnswers.question.answers.id":101,"experimentAnswers.question.answers.text":"Double-blind","experimentAnswers.question.answers.sortOrder":20,"experimentAnswers.question.answers.conceptId":null,"experimentAnswers.question.answers.questionId":100,"experimentAnswers.answer.id":100,"experimentAnswers.answer.text":"Probe cocktail study","experimentAnswers.answer.sortOrder":10,"experimentAnswers.answer.conceptId":null,"experimentAnswers.answer.questionId":100},{"id":297,"uid":"NPDI-Bi2fGw","name":"CYP3A4 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Interaction","experimentType.isInVitro":false,"experimentType.isTransporter":false,"experimentType.isEnzyme":false,"experimentType.purl":"http://purl.obolibrary.org/obo/DIDEO_00000071","objectCompound.id":26,"objectCompound.name":"midazolam","objectCompound.unii":"R60L0SM5BC","objectCompound.inChIKey":"DDLIGBOFAVUZHB-UHFFFAOYSA-N","objectCompound.publicDescription":null,"objectCompound.internalComment":null,"objectCompound.conceptId":708298,"objectCompound.enantiomerOfId":null,"objectCompound.concept.conceptId":708298,"objectCompound.concept.conceptName":"Midazolam","objectCompound.concept.domainId":"Drug","objectCompound.concept.vocabularyId":"RxNorm","objectCompound.concept.conceptClassId":"Ingredient","objectCompound.concept.standardConcept":"S","objectCompound.concept.conceptCode":"6960","objectCompound.concept.validStartDate":"1970-01-01T00:00:00.000Z","objectCompound.concept.validEndDate":"2099-12-31T00:00:00.000Z","objectCompound.concept.invalid_reason":null,"precipitantCompound.id":127,"precipitantCompound.name":"goldenseal root extract","precipitantCompound.unii":null,"precipitantCompound.inChIKey":null,"precipitantCompound.publicDescription":null,"precipitantCompound.internalComment":null,"precipitantCompound.conceptId":null,"precipitantCompound.enantiomerOfId":null,"precipitantCompound.concept.conceptId":null,"precipitantCompound.concept.conceptName":null,"precipitantCompound.concept.domainId":null,"precipitantCompound.concept.vocabularyId":null,"precipitantCompound.concept.conceptClassId":null,"precipitantCompound.concept.standardConcept":null,"precipitantCompound.concept.conceptCode":null,"precipitantCompound.concept.validStartDate":null,"precipitantCompound.concept.validEndDate":null,"precipitantCompound.concept.invalid_reason":null,"objectMetaboliteCompound.id":null,"objectMetaboliteCompound.name":null,"objectMetaboliteCompound.unii":null,"objectMetaboliteCompound.inChIKey":null,"objectMetaboliteCompound.publicDescription":null,"objectMetaboliteCompound.internalComment":null,"objectMetaboliteCompound.conceptId":null,"objectMetaboliteCompound.enantiomerOfId":null,"objectMetaboliteCompound.concept.conceptId":null,"objectMetaboliteCompound.concept.conceptName":null,"objectMetaboliteCompound.concept.domainId":null,"objectMetaboliteCompound.concept.vocabularyId":null,"objectMetaboliteCompound.concept.conceptClassId":null,"objectMetaboliteCompound.concept.standardConcept":null,"objectMetaboliteCompound.concept.conceptCode":null,"objectMetaboliteCompound.concept.validStartDate":null,"objectMetaboliteCompound.concept.validEndDate":null,"objectMetaboliteCompound.concept.invalid_reason":null,"enzymes.id":13,"enzymes.name":"CYP3A4","enzymes.conceptId":4306811,"enzymes.experiment_enzyme_xref.enzymeId":13,"enzymes.experiment_enzyme_xref.experimentId":297,"transporters.id":null,"transporters.name":null,"transporters.conceptId":null,"transporters.experiment_transporter_xref.experimentId":null,"transporters.experiment_transporter_xref.transporterId":null,"quantifiedMetabolites.id":null,"quantifiedMetabolites.name":null,"quantifiedMetabolites.unii":null,"quantifiedMetabolites.inChIKey":null,"quantifiedMetabolites.publicDescription":null,"quantifiedMetabolites.internalComment":null,"quantifiedMetabolites.conceptId":null,"quantifiedMetabolites.enantiomerOfId":null,"quantifiedMetabolites.experiment_quantified_metabolite_xref.com":null,"quantifiedMetabolites.experiment_quantified_metabolite_xref.exp":null,"study.id":73,"study.uid":"NPDI-ftEv0g","study.name":"In vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis 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Interaction","experimentType.isInVitro":false,"experimentType.isTransporter":false,"experimentType.isEnzyme":false,"experimentType.purl":"http://purl.obolibrary.org/obo/DIDEO_00000071","objectCompound.id":26,"objectCompound.name":"midazolam","objectCompound.unii":"R60L0SM5BC","objectCompound.inChIKey":"DDLIGBOFAVUZHB-UHFFFAOYSA-N","objectCompound.publicDescription":null,"objectCompound.internalComment":null,"objectCompound.conceptId":708298,"objectCompound.enantiomerOfId":null,"objectCompound.concept.conceptId":708298,"objectCompound.concept.conceptName":"Midazolam","objectCompound.concept.domainId":"Drug","objectCompound.concept.vocabularyId":"RxNorm","objectCompound.concept.conceptClassId":"Ingredient","objectCompound.concept.standardConcept":"S","objectCompound.concept.conceptCode":"6960","objectCompound.concept.validStartDate":"1970-01-01T00:00:00.000Z","objectCompound.concept.validEndDate":"2099-12-31T00:00:00.000Z","objectCompound.concept.invalid_reason":null,"precipitantCompound.id":127,"precipitantCompound.name":"goldenseal 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis 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Interaction","experimentType.isInVitro":false,"experimentType.isTransporter":false,"experimentType.isEnzyme":false,"experimentType.purl":"http://purl.obolibrary.org/obo/DIDEO_00000071","objectCompound.id":26,"objectCompound.name":"midazolam","objectCompound.unii":"R60L0SM5BC","objectCompound.inChIKey":"DDLIGBOFAVUZHB-UHFFFAOYSA-N","objectCompound.publicDescription":null,"objectCompound.internalComment":null,"objectCompound.conceptId":708298,"objectCompound.enantiomerOfId":null,"objectCompound.concept.conceptId":708298,"objectCompound.concept.conceptName":"Midazolam","objectCompound.concept.domainId":"Drug","objectCompound.concept.vocabularyId":"RxNorm","objectCompound.concept.conceptClassId":"Ingredient","objectCompound.concept.standardConcept":"S","objectCompound.concept.conceptCode":"6960","objectCompound.concept.validStartDate":"1970-01-01T00:00:00.000Z","objectCompound.concept.validEndDate":"2099-12-31T00:00:00.000Z","objectCompound.concept.invalid_reason":null,"precipitantCompound.id":127,"precipitantCompound.name":"goldenseal 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis 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Interaction","experimentType.isInVitro":false,"experimentType.isTransporter":false,"experimentType.isEnzyme":false,"experimentType.purl":"http://purl.obolibrary.org/obo/DIDEO_00000071","objectCompound.id":26,"objectCompound.name":"midazolam","objectCompound.unii":"R60L0SM5BC","objectCompound.inChIKey":"DDLIGBOFAVUZHB-UHFFFAOYSA-N","objectCompound.publicDescription":null,"objectCompound.internalComment":null,"objectCompound.conceptId":708298,"objectCompound.enantiomerOfId":null,"objectCompound.concept.conceptId":708298,"objectCompound.concept.conceptName":"Midazolam","objectCompound.concept.domainId":"Drug","objectCompound.concept.vocabularyId":"RxNorm","objectCompound.concept.conceptClassId":"Ingredient","objectCompound.concept.standardConcept":"S","objectCompound.concept.conceptCode":"6960","objectCompound.concept.validStartDate":"1970-01-01T00:00:00.000Z","objectCompound.concept.validEndDate":"2099-12-31T00:00:00.000Z","objectCompound.concept.invalid_reason":null,"precipitantCompound.id":127,"precipitantCompound.name":"goldenseal 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis canadensis","study.naturalProduct.name":"Goldenseal","study.naturalProduct.itis":null,"study.naturalProduct.srs":"66690655-f406-4d67-96e3-2066aafee8d5","study.naturalProduct.source_id":"","study.naturalProduct.conceptId":null,"study.naturalProduct.concept.conceptId":null,"study.naturalProduct.concept.conceptName":null,"study.naturalProduct.concept.domainId":null,"study.naturalProduct.concept.vocabularyId":null,"study.naturalProduct.concept.conceptClassId":null,"study.naturalProduct.concept.standardConcept":null,"study.naturalProduct.concept.conceptCode":null,"study.naturalProduct.concept.validStartDate":null,"study.naturalProduct.concept.validEndDate":null,"study.naturalProduct.concept.invalid_reason":null,"study.compound.id":null,"study.compound.name":null,"study.compound.unii":null,"study.compound.inChIKey":null,"study.compound.publicDescription":null,"study.compound.internalComment":null,"study.compound.conceptId":null,"study.compound.enantiomerOfId":null,"study.studySourceType.id":1,"study.studySourceType.name":"Published report","testSystem.id":null,"testSystem.name":null,"testSystem.sortOrder":null,"testSystem.conceptId":null,"testSystem.categoryId":null,"testSystem.category.id":null,"testSystem.category.name":null,"testSystem.category.sortOrder":null,"testSystem.category.requiresCytochromeB5":null,"cytochromeB5.id":null,"cytochromeB5.name":null,"cytochromeB5.sortOrder":null,"cytochromeB5.conceptId":null,"controlDataExperiment.id":null,"controlDataExperiment.uid":null,"controlDataExperiment.name":null,"controlDataExperiment.overallEffect":null,"controlDataExperiment.isControlData":null,"controlDataExperiment.isIc50Shift":null,"controlDataExperiment.croCutoff":null,"controlDataExperiment.croIdentifier":null,"controlDataExperiment.comment":null,"controlDataExperiment.experimentalConditionsComment":null,"controlDataExperiment.resultsComment":null,"controlDataExperiment.internalComment":null,"controlDataExperiment.objectCompoundId":null,"controlDataExperiment.objectMetaboliteCompoundId":null,"controlDataExperiment.precipitantCompoundId":null,"controlDataExperiment.cytochromeB5Id":null,"controlDataExperiment.studyId":null,"controlDataExperiment.experimentTypeId":null,"controlDataExperiment.testSystemId":null,"controlDataExperiment.ic50ShiftExperimentId":null,"controlDataExperiment.controlDataExperimentId":null,"controlDataExperiment.controlDataForExperimentId":null,"controlDataExperiment.naturalProductSampleId":null,"controlDataExperiment.experimentType.id":null,"controlDataExperiment.experimentType.name":null,"controlDataExperiment.experimentType.isInVitro":null,"controlDataExperiment.experimentType.isTransporter":null,"controlDataExperiment.experimentType.isEnzyme":null,"controlDataExperiment.experimentType.purl":null,"controlDataExperiment.objectCompound.id":null,"controlDataExperiment.objectCompound.name":null,"controlDataExperiment.objectCompound.unii":null,"controlDataExperiment.objectCompound.inChIKey":null,"controlDataExperiment.objectCompound.publicDescription":null,"controlDataExperiment.objectCompound.internalComment":null,"controlDataExperiment.objectCompound.conceptId":null,"controlDataExperiment.objectCompound.enantiomerOfId":null,"controlDataExperiment.precipitantCompound.id":null,"controlDataExperiment.precipitantCompound.name":null,"controlDataExperiment.precipitantCompound.unii":null,"controlDataExperiment.precipitantCompound.inChIKey":null,"controlDataExperiment.precipitantCompound.publicDescription":null,"controlDataExperiment.precipitantCompound.internalComment":null,"controlDataExperiment.precipitantCompound.conceptId":null,"controlDataExperiment.precipitantCompound.enantiomerOfId":null,"controlDataExperiment.objectMetaboliteCompound.id":null,"controlDataExperiment.objectMetaboliteCompound.name":null,"controlDataExperiment.objectMetaboliteCompound.unii":null,"controlDataExperiment.objectMetaboliteCompound.inChIKey":null,"controlDataExperiment.objectMetaboliteCompound.publicDescriptio":null,"controlDataExperiment.objectMetaboliteCompound.internalComment":null,"controlDataExperiment.objectMetaboliteCompound.conceptId":null,"controlDataExperiment.objectMetaboliteCompound.enantiomerOfId":null,"controlDataExperiment.enzymes.id":null,"controlDataExperiment.enzymes.name":null,"controlDataExperiment.enzymes.conceptId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.enzymeId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.experiment":null,"controlDataExperiment.transporters.id":null,"controlDataExperiment.transporters.name":null,"controlDataExperiment.transporters.conceptId":null,"controlDataExperiment.transporters.experiment_transporter_xref.":null,"controlDataExperiment.quantifiedMetabolites.id":null,"controlDataExperiment.quantifiedMetabolites.name":null,"controlDataExperiment.quantifiedMetabolites.unii":null,"controlDataExperiment.quantifiedMetabolites.inChIKey":null,"controlDataExperiment.quantifiedMetabolites.publicDescription":null,"controlDataExperiment.quantifiedMetabolites.internalComment":null,"controlDataExperiment.quantifiedMetabolites.conceptId":null,"controlDataExperiment.quantifiedMetabolites.enantiomerOfId":null,"controlDataExperiment.quantifiedMetabolites.experiment_quantifi":null,"experimentAnswers.id":7009,"experimentAnswers.text":null,"experimentAnswers.answerId":100,"experimentAnswers.experimentId":297,"experimentAnswers.questionId":100,"experimentAnswers.question.id":100,"experimentAnswers.question.text":"Study design","experimentAnswers.question.required":true,"experimentAnswers.question.maxAnswers":100,"experimentAnswers.question.type":null,"experimentAnswers.question.conceptId":null,"experimentAnswers.question.answers.id":100,"experimentAnswers.question.answers.text":"Probe cocktail study","experimentAnswers.question.answers.sortOrder":10,"experimentAnswers.question.answers.conceptId":null,"experimentAnswers.question.answers.questionId":100,"experimentAnswers.answer.id":100,"experimentAnswers.answer.text":"Probe cocktail study","experimentAnswers.answer.sortOrder":10,"experimentAnswers.answer.conceptId":null,"experimentAnswers.answer.questionId":100},{"id":297,"uid":"NPDI-Bi2fGw","name":"CYP3A4 Experiment","overallEffect":1,"isControlData":false,"isIc50Shift":false,"croCutoff":null,"croIdentifier":null,"comment":null,"experimentalConditionsComment":null,"resultsComment":null,"internalComment":null,"objectCompoundId":26,"objectMetaboliteCompoundId":null,"precipitantCompoundId":127,"cytochromeB5Id":null,"studyId":73,"experimentTypeId":9,"testSystemId":null,"ic50ShiftExperimentId":null,"controlDataExperimentId":null,"controlDataForExperimentId":null,"naturalProductSampleId":null,"experimentType.id":9,"experimentType.name":"In Vivo Interaction","experimentType.isInVitro":false,"experimentType.isTransporter":false,"experimentType.isEnzyme":false,"experimentType.purl":"http://purl.obolibrary.org/obo/DIDEO_00000071","objectCompound.id":26,"objectCompound.name":"midazolam","objectCompound.unii":"R60L0SM5BC","objectCompound.inChIKey":"DDLIGBOFAVUZHB-UHFFFAOYSA-N","objectCompound.publicDescription":null,"objectCompound.internalComment":null,"objectCompound.conceptId":708298,"objectCompound.enantiomerOfId":null,"objectCompound.concept.conceptId":708298,"objectCompound.concept.conceptName":"Midazolam","objectCompound.concept.domainId":"Drug","objectCompound.concept.vocabularyId":"RxNorm","objectCompound.concept.conceptClassId":"Ingredient","objectCompound.concept.standardConcept":"S","objectCompound.concept.conceptCode":"6960","objectCompound.concept.validStartDate":"1970-01-01T00:00:00.000Z","objectCompound.concept.validEndDate":"2099-12-31T00:00:00.000Z","objectCompound.concept.invalid_reason":null,"precipitantCompound.id":127,"precipitantCompound.name":"goldenseal 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extract","precipitantCompound.unii":null,"precipitantCompound.inChIKey":null,"precipitantCompound.publicDescription":null,"precipitantCompound.internalComment":null,"precipitantCompound.conceptId":null,"precipitantCompound.enantiomerOfId":null,"precipitantCompound.concept.conceptId":null,"precipitantCompound.concept.conceptName":null,"precipitantCompound.concept.domainId":null,"precipitantCompound.concept.vocabularyId":null,"precipitantCompound.concept.conceptClassId":null,"precipitantCompound.concept.standardConcept":null,"precipitantCompound.concept.conceptCode":null,"precipitantCompound.concept.validStartDate":null,"precipitantCompound.concept.validEndDate":null,"precipitantCompound.concept.invalid_reason":null,"objectMetaboliteCompound.id":null,"objectMetaboliteCompound.name":null,"objectMetaboliteCompound.unii":null,"objectMetaboliteCompound.inChIKey":null,"objectMetaboliteCompound.publicDescription":null,"objectMetaboliteCompound.internalComment":null,"objectMetaboliteCompound.conceptId":null,"objectMetaboliteCompound.enantiomerOfId":null,"objectMetaboliteCompound.concept.conceptId":null,"objectMetaboliteCompound.concept.conceptName":null,"objectMetaboliteCompound.concept.domainId":null,"objectMetaboliteCompound.concept.vocabularyId":null,"objectMetaboliteCompound.concept.conceptClassId":null,"objectMetaboliteCompound.concept.standardConcept":null,"objectMetaboliteCompound.concept.conceptCode":null,"objectMetaboliteCompound.concept.validStartDate":null,"objectMetaboliteCompound.concept.validEndDate":null,"objectMetaboliteCompound.concept.invalid_reason":null,"enzymes.id":13,"enzymes.name":"CYP3A4","enzymes.conceptId":4306811,"enzymes.experiment_enzyme_xref.enzymeId":13,"enzymes.experiment_enzyme_xref.experimentId":297,"transporters.id":null,"transporters.name":null,"transporters.conceptId":null,"transporters.experiment_transporter_xref.experimentId":null,"transporters.experiment_transporter_xref.transporterId":null,"quantifiedMetabolites.id":null,"quantifiedMetabolites.name":null,"quantifiedMetabolites.unii":null,"quantifiedMetabolites.inChIKey":null,"quantifiedMetabolites.publicDescription":null,"quantifiedMetabolites.internalComment":null,"quantifiedMetabolites.conceptId":null,"quantifiedMetabolites.enantiomerOfId":null,"quantifiedMetabolites.experiment_quantified_metabolite_xref.com":null,"quantifiedMetabolites.experiment_quantified_metabolite_xref.exp":null,"study.id":73,"study.uid":"NPDI-ftEv0g","study.name":"In vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis canadensis","study.naturalProduct.name":"Goldenseal","study.naturalProduct.itis":null,"study.naturalProduct.srs":"66690655-f406-4d67-96e3-2066aafee8d5","study.naturalProduct.source_id":"","study.naturalProduct.conceptId":null,"study.naturalProduct.concept.conceptId":null,"study.naturalProduct.concept.conceptName":null,"study.naturalProduct.concept.domainId":null,"study.naturalProduct.concept.vocabularyId":null,"study.naturalProduct.concept.conceptClassId":null,"study.naturalProduct.concept.standardConcept":null,"study.naturalProduct.concept.conceptCode":null,"study.naturalProduct.concept.validStartDate":null,"study.naturalProduct.concept.validEndDate":null,"study.naturalProduct.concept.invalid_reason":null,"study.compound.id":null,"study.compound.name":null,"study.compound.unii":null,"study.compound.inChIKey":null,"study.compound.publicDescription":null,"study.compound.internalComment":null,"study.compound.conceptId":null,"study.compound.enantiomerOfId":null,"study.studySourceType.id":1,"study.studySourceType.name":"Published 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design","experimentAnswers.question.required":true,"experimentAnswers.question.maxAnswers":100,"experimentAnswers.question.type":null,"experimentAnswers.question.conceptId":null,"experimentAnswers.question.answers.id":106,"experimentAnswers.question.answers.text":"Single dosing","experimentAnswers.question.answers.sortOrder":70,"experimentAnswers.question.answers.conceptId":null,"experimentAnswers.question.answers.questionId":100,"experimentAnswers.answer.id":100,"experimentAnswers.answer.text":"Probe cocktail study","experimentAnswers.answer.sortOrder":10,"experimentAnswers.answer.conceptId":null,"experimentAnswers.answer.questionId":100},{"id":297,"uid":"NPDI-Bi2fGw","name":"CYP3A4 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Interaction","experimentType.isInVitro":false,"experimentType.isTransporter":false,"experimentType.isEnzyme":false,"experimentType.purl":"http://purl.obolibrary.org/obo/DIDEO_00000071","objectCompound.id":26,"objectCompound.name":"midazolam","objectCompound.unii":"R60L0SM5BC","objectCompound.inChIKey":"DDLIGBOFAVUZHB-UHFFFAOYSA-N","objectCompound.publicDescription":null,"objectCompound.internalComment":null,"objectCompound.conceptId":708298,"objectCompound.enantiomerOfId":null,"objectCompound.concept.conceptId":708298,"objectCompound.concept.conceptName":"Midazolam","objectCompound.concept.domainId":"Drug","objectCompound.concept.vocabularyId":"RxNorm","objectCompound.concept.conceptClassId":"Ingredient","objectCompound.concept.standardConcept":"S","objectCompound.concept.conceptCode":"6960","objectCompound.concept.validStartDate":"1970-01-01T00:00:00.000Z","objectCompound.concept.validEndDate":"2099-12-31T00:00:00.000Z","objectCompound.concept.invalid_reason":null,"precipitantCompound.id":127,"precipitantCompound.name":"goldenseal 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis canadensis","study.naturalProduct.name":"Goldenseal","study.naturalProduct.itis":null,"study.naturalProduct.srs":"66690655-f406-4d67-96e3-2066aafee8d5","study.naturalProduct.source_id":"","study.naturalProduct.conceptId":null,"study.naturalProduct.concept.conceptId":null,"study.naturalProduct.concept.conceptName":null,"study.naturalProduct.concept.domainId":null,"study.naturalProduct.concept.vocabularyId":null,"study.naturalProduct.concept.conceptClassId":null,"study.naturalProduct.concept.standardConcept":null,"study.naturalProduct.concept.conceptCode":null,"study.naturalProduct.concept.validStartDate":null,"study.naturalProduct.concept.validEndDate":null,"study.naturalProduct.concept.invalid_reason":null,"study.compound.id":null,"study.compound.name":null,"study.compound.unii":null,"study.compound.inChIKey":null,"study.compound.publicDescription":null,"study.compound.internalComment":null,"study.compound.conceptId":null,"study.compound.enantiomerOfId":null,"study.studySourceType.id":1,"study.studySourceType.name":"Published report","testSystem.id":null,"testSystem.name":null,"testSystem.sortOrder":null,"testSystem.conceptId":null,"testSystem.categoryId":null,"testSystem.category.id":null,"testSystem.category.name":null,"testSystem.category.sortOrder":null,"testSystem.category.requiresCytochromeB5":null,"cytochromeB5.id":null,"cytochromeB5.name":null,"cytochromeB5.sortOrder":null,"cytochromeB5.conceptId":null,"controlDataExperiment.id":null,"controlDataExperiment.uid":null,"controlDataExperiment.name":null,"controlDataExperiment.overallEffect":null,"controlDataExperiment.isControlData":null,"controlDataExperiment.isIc50Shift":null,"controlDataExperiment.croCutoff":null,"controlDataExperiment.croIdentifier":null,"controlDataExperiment.comment":null,"controlDataExperiment.experimentalConditionsComment":null,"controlDataExperiment.resultsComment":null,"controlDataExperiment.internalComment":null,"controlDataExperiment.objectCompoundId":null,"controlDataExperiment.objectMetaboliteCompoundId":null,"controlDataExperiment.precipitantCompoundId":null,"controlDataExperiment.cytochromeB5Id":null,"controlDataExperiment.studyId":null,"controlDataExperiment.experimentTypeId":null,"controlDataExperiment.testSystemId":null,"controlDataExperiment.ic50ShiftExperimentId":null,"controlDataExperiment.controlDataExperimentId":null,"controlDataExperiment.controlDataForExperimentId":null,"controlDataExperiment.naturalProductSampleId":null,"controlDataExperiment.experimentType.id":null,"controlDataExperiment.experimentType.name":null,"controlDataExperiment.experimentType.isInVitro":null,"controlDataExperiment.experimentType.isTransporter":null,"controlDataExperiment.experimentType.isEnzyme":null,"controlDataExperiment.experimentType.purl":null,"controlDataExperiment.objectCompound.id":null,"controlDataExperiment.objectCompound.name":null,"controlDataExperiment.objectCompound.unii":null,"controlDataExperiment.objectCompound.inChIKey":null,"controlDataExperiment.objectCompound.publicDescription":null,"controlDataExperiment.objectCompound.internalComment":null,"controlDataExperiment.objectCompound.conceptId":null,"controlDataExperiment.objectCompound.enantiomerOfId":null,"controlDataExperiment.precipitantCompound.id":null,"controlDataExperiment.precipitantCompound.name":null,"controlDataExperiment.precipitantCompound.unii":null,"controlDataExperiment.precipitantCompound.inChIKey":null,"controlDataExperiment.precipitantCompound.publicDescription":null,"controlDataExperiment.precipitantCompound.internalComment":null,"controlDataExperiment.precipitantCompound.conceptId":null,"controlDataExperiment.precipitantCompound.enantiomerOfId":null,"controlDataExperiment.objectMetaboliteCompound.id":null,"controlDataExperiment.objectMetaboliteCompound.name":null,"controlDataExperiment.objectMetaboliteCompound.unii":null,"controlDataExperiment.objectMetaboliteCompound.inChIKey":null,"controlDataExperiment.objectMetaboliteCompound.publicDescriptio":null,"controlDataExperiment.objectMetaboliteCompound.internalComment":null,"controlDataExperiment.objectMetaboliteCompound.conceptId":null,"controlDataExperiment.objectMetaboliteCompound.enantiomerOfId":null,"controlDataExperiment.enzymes.id":null,"controlDataExperiment.enzymes.name":null,"controlDataExperiment.enzymes.conceptId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.enzymeId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.experiment":null,"controlDataExperiment.transporters.id":null,"controlDataExperiment.transporters.name":null,"controlDataExperiment.transporters.conceptId":null,"controlDataExperiment.transporters.experiment_transporter_xref.":null,"controlDataExperiment.quantifiedMetabolites.id":null,"controlDataExperiment.quantifiedMetabolites.name":null,"controlDataExperiment.quantifiedMetabolites.unii":null,"controlDataExperiment.quantifiedMetabolites.inChIKey":null,"controlDataExperiment.quantifiedMetabolites.publicDescription":null,"controlDataExperiment.quantifiedMetabolites.internalComment":null,"controlDataExperiment.quantifiedMetabolites.conceptId":null,"controlDataExperiment.quantifiedMetabolites.enantiomerOfId":null,"controlDataExperiment.quantifiedMetabolites.experiment_quantifi":null,"experimentAnswers.id":7010,"experimentAnswers.text":null,"experimentAnswers.answerId":102,"experimentAnswers.experimentId":297,"experimentAnswers.questionId":100,"experimentAnswers.question.id":100,"experimentAnswers.question.text":"Study 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Interaction","experimentType.isInVitro":false,"experimentType.isTransporter":false,"experimentType.isEnzyme":false,"experimentType.purl":"http://purl.obolibrary.org/obo/DIDEO_00000071","objectCompound.id":26,"objectCompound.name":"midazolam","objectCompound.unii":"R60L0SM5BC","objectCompound.inChIKey":"DDLIGBOFAVUZHB-UHFFFAOYSA-N","objectCompound.publicDescription":null,"objectCompound.internalComment":null,"objectCompound.conceptId":708298,"objectCompound.enantiomerOfId":null,"objectCompound.concept.conceptId":708298,"objectCompound.concept.conceptName":"Midazolam","objectCompound.concept.domainId":"Drug","objectCompound.concept.vocabularyId":"RxNorm","objectCompound.concept.conceptClassId":"Ingredient","objectCompound.concept.standardConcept":"S","objectCompound.concept.conceptCode":"6960","objectCompound.concept.validStartDate":"1970-01-01T00:00:00.000Z","objectCompound.concept.validEndDate":"2099-12-31T00:00:00.000Z","objectCompound.concept.invalid_reason":null,"precipitantCompound.id":127,"precipitantCompound.name":"goldenseal 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis canadensis","study.naturalProduct.name":"Goldenseal","study.naturalProduct.itis":null,"study.naturalProduct.srs":"66690655-f406-4d67-96e3-2066aafee8d5","study.naturalProduct.source_id":"","study.naturalProduct.conceptId":null,"study.naturalProduct.concept.conceptId":null,"study.naturalProduct.concept.conceptName":null,"study.naturalProduct.concept.domainId":null,"study.naturalProduct.concept.vocabularyId":null,"study.naturalProduct.concept.conceptClassId":null,"study.naturalProduct.concept.standardConcept":null,"study.naturalProduct.concept.conceptCode":null,"study.naturalProduct.concept.validStartDate":null,"study.naturalProduct.concept.validEndDate":null,"study.naturalProduct.concept.invalid_reason":null,"study.compound.id":null,"study.compound.name":null,"study.compound.unii":null,"study.compound.inChIKey":null,"study.compound.publicDescription":null,"study.compound.internalComment":null,"study.compound.conceptId":null,"study.compound.enantiomerOfId":null,"study.studySourceType.id":1,"study.studySourceType.name":"Published report","testSystem.id":null,"testSystem.name":null,"testSystem.sortOrder":null,"testSystem.conceptId":null,"testSystem.categoryId":null,"testSystem.category.id":null,"testSystem.category.name":null,"testSystem.category.sortOrder":null,"testSystem.category.requiresCytochromeB5":null,"cytochromeB5.id":null,"cytochromeB5.name":null,"cytochromeB5.sortOrder":null,"cytochromeB5.conceptId":null,"controlDataExperiment.id":null,"controlDataExperiment.uid":null,"controlDataExperiment.name":null,"controlDataExperiment.overallEffect":null,"controlDataExperiment.isControlData":null,"controlDataExperiment.isIc50Shift":null,"controlDataExperiment.croCutoff":null,"controlDataExperiment.croIdentifier":null,"controlDataExperiment.comment":null,"controlDataExperiment.experimentalConditionsComment":null,"controlDataExperiment.resultsComment":null,"controlDataExperiment.internalComment":null,"controlDataExperiment.objectCompoundId":null,"controlDataExperiment.objectMetaboliteCompoundId":null,"controlDataExperiment.precipitantCompoundId":null,"controlDataExperiment.cytochromeB5Id":null,"controlDataExperiment.studyId":null,"controlDataExperiment.experimentTypeId":null,"controlDataExperiment.testSystemId":null,"controlDataExperiment.ic50ShiftExperimentId":null,"controlDataExperiment.controlDataExperimentId":null,"controlDataExperiment.controlDataForExperimentId":null,"controlDataExperiment.naturalProductSampleId":null,"controlDataExperiment.experimentType.id":null,"controlDataExperiment.experimentType.name":null,"controlDataExperiment.experimentType.isInVitro":null,"controlDataExperiment.experimentType.isTransporter":null,"controlDataExperiment.experimentType.isEnzyme":null,"controlDataExperiment.experimentType.purl":null,"controlDataExperiment.objectCompound.id":null,"controlDataExperiment.objectCompound.name":null,"controlDataExperiment.objectCompound.unii":null,"controlDataExperiment.objectCompound.inChIKey":null,"controlDataExperiment.objectCompound.publicDescription":null,"controlDataExperiment.objectCompound.internalComment":null,"controlDataExperiment.objectCompound.conceptId":null,"controlDataExperiment.objectCompound.enantiomerOfId":null,"controlDataExperiment.precipitantCompound.id":null,"controlDataExperiment.precipitantCompound.name":null,"controlDataExperiment.precipitantCompound.unii":null,"controlDataExperiment.precipitantCompound.inChIKey":null,"controlDataExperiment.precipitantCompound.publicDescription":null,"controlDataExperiment.precipitantCompound.internalComment":null,"controlDataExperiment.precipitantCompound.conceptId":null,"controlDataExperiment.precipitantCompound.enantiomerOfId":null,"controlDataExperiment.objectMetaboliteCompound.id":null,"controlDataExperiment.objectMetaboliteCompound.name":null,"controlDataExperiment.objectMetaboliteCompound.unii":null,"controlDataExperiment.objectMetaboliteCompound.inChIKey":null,"controlDataExperiment.objectMetaboliteCompound.publicDescriptio":null,"controlDataExperiment.objectMetaboliteCompound.internalComment":null,"controlDataExperiment.objectMetaboliteCompound.conceptId":null,"controlDataExperiment.objectMetaboliteCompound.enantiomerOfId":null,"controlDataExperiment.enzymes.id":null,"controlDataExperiment.enzymes.name":null,"controlDataExperiment.enzymes.conceptId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.enzymeId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.experiment":null,"controlDataExperiment.transporters.id":null,"controlDataExperiment.transporters.name":null,"controlDataExperiment.transporters.conceptId":null,"controlDataExperiment.transporters.experiment_transporter_xref.":null,"controlDataExperiment.quantifiedMetabolites.id":null,"controlDataExperiment.quantifiedMetabolites.name":null,"controlDataExperiment.quantifiedMetabolites.unii":null,"controlDataExperiment.quantifiedMetabolites.inChIKey":null,"controlDataExperiment.quantifiedMetabolites.publicDescription":null,"controlDataExperiment.quantifiedMetabolites.internalComment":null,"controlDataExperiment.quantifiedMetabolites.conceptId":null,"controlDataExperiment.quantifiedMetabolites.enantiomerOfId":null,"controlDataExperiment.quantifiedMetabolites.experiment_quantifi":null,"experimentAnswers.id":7010,"experimentAnswers.text":null,"experimentAnswers.answerId":102,"experimentAnswers.experimentId":297,"experimentAnswers.questionId":100,"experimentAnswers.question.id":100,"experimentAnswers.question.text":"Study 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Interaction","experimentType.isInVitro":false,"experimentType.isTransporter":false,"experimentType.isEnzyme":false,"experimentType.purl":"http://purl.obolibrary.org/obo/DIDEO_00000071","objectCompound.id":26,"objectCompound.name":"midazolam","objectCompound.unii":"R60L0SM5BC","objectCompound.inChIKey":"DDLIGBOFAVUZHB-UHFFFAOYSA-N","objectCompound.publicDescription":null,"objectCompound.internalComment":null,"objectCompound.conceptId":708298,"objectCompound.enantiomerOfId":null,"objectCompound.concept.conceptId":708298,"objectCompound.concept.conceptName":"Midazolam","objectCompound.concept.domainId":"Drug","objectCompound.concept.vocabularyId":"RxNorm","objectCompound.concept.conceptClassId":"Ingredient","objectCompound.concept.standardConcept":"S","objectCompound.concept.conceptCode":"6960","objectCompound.concept.validStartDate":"1970-01-01T00:00:00.000Z","objectCompound.concept.validEndDate":"2099-12-31T00:00:00.000Z","objectCompound.concept.invalid_reason":null,"precipitantCompound.id":127,"precipitantCompound.name":"goldenseal 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis 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design","experimentAnswers.question.required":true,"experimentAnswers.question.maxAnswers":100,"experimentAnswers.question.type":null,"experimentAnswers.question.conceptId":null,"experimentAnswers.question.answers.id":105,"experimentAnswers.question.answers.text":"Randomized crossover","experimentAnswers.question.answers.sortOrder":60,"experimentAnswers.question.answers.conceptId":null,"experimentAnswers.question.answers.questionId":100,"experimentAnswers.answer.id":102,"experimentAnswers.answer.text":"Fixed-sequence","experimentAnswers.answer.sortOrder":30,"experimentAnswers.answer.conceptId":null,"experimentAnswers.answer.questionId":100},{"id":297,"uid":"NPDI-Bi2fGw","name":"CYP3A4 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Interaction","experimentType.isInVitro":false,"experimentType.isTransporter":false,"experimentType.isEnzyme":false,"experimentType.purl":"http://purl.obolibrary.org/obo/DIDEO_00000071","objectCompound.id":26,"objectCompound.name":"midazolam","objectCompound.unii":"R60L0SM5BC","objectCompound.inChIKey":"DDLIGBOFAVUZHB-UHFFFAOYSA-N","objectCompound.publicDescription":null,"objectCompound.internalComment":null,"objectCompound.conceptId":708298,"objectCompound.enantiomerOfId":null,"objectCompound.concept.conceptId":708298,"objectCompound.concept.conceptName":"Midazolam","objectCompound.concept.domainId":"Drug","objectCompound.concept.vocabularyId":"RxNorm","objectCompound.concept.conceptClassId":"Ingredient","objectCompound.concept.standardConcept":"S","objectCompound.concept.conceptCode":"6960","objectCompound.concept.validStartDate":"1970-01-01T00:00:00.000Z","objectCompound.concept.validEndDate":"2099-12-31T00:00:00.000Z","objectCompound.concept.invalid_reason":null,"precipitantCompound.id":127,"precipitantCompound.name":"goldenseal 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis canadensis","study.naturalProduct.name":"Goldenseal","study.naturalProduct.itis":null,"study.naturalProduct.srs":"66690655-f406-4d67-96e3-2066aafee8d5","study.naturalProduct.source_id":"","study.naturalProduct.conceptId":null,"study.naturalProduct.concept.conceptId":null,"study.naturalProduct.concept.conceptName":null,"study.naturalProduct.concept.domainId":null,"study.naturalProduct.concept.vocabularyId":null,"study.naturalProduct.concept.conceptClassId":null,"study.naturalProduct.concept.standardConcept":null,"study.naturalProduct.concept.conceptCode":null,"study.naturalProduct.concept.validStartDate":null,"study.naturalProduct.concept.validEndDate":null,"study.naturalProduct.concept.invalid_reason":null,"study.compound.id":null,"study.compound.name":null,"study.compound.unii":null,"study.compound.inChIKey":null,"study.compound.publicDescription":null,"study.compound.internalComment":null,"study.compound.conceptId":null,"study.compound.enantiomerOfId":null,"study.studySourceType.id":1,"study.studySourceType.name":"Published report","testSystem.id":null,"testSystem.name":null,"testSystem.sortOrder":null,"testSystem.conceptId":null,"testSystem.categoryId":null,"testSystem.category.id":null,"testSystem.category.name":null,"testSystem.category.sortOrder":null,"testSystem.category.requiresCytochromeB5":null,"cytochromeB5.id":null,"cytochromeB5.name":null,"cytochromeB5.sortOrder":null,"cytochromeB5.conceptId":null,"controlDataExperiment.id":null,"controlDataExperiment.uid":null,"controlDataExperiment.name":null,"controlDataExperiment.overallEffect":null,"controlDataExperiment.isControlData":null,"controlDataExperiment.isIc50Shift":null,"controlDataExperiment.croCutoff":null,"controlDataExperiment.croIdentifier":null,"controlDataExperiment.comment":null,"controlDataExperiment.experimentalConditionsComment":null,"controlDataExperiment.resultsComment":null,"controlDataExperiment.internalComment":null,"controlDataExperiment.objectCompoundId":null,"controlDataExperiment.objectMetaboliteCompoundId":null,"controlDataExperiment.precipitantCompoundId":null,"controlDataExperiment.cytochromeB5Id":null,"controlDataExperiment.studyId":null,"controlDataExperiment.experimentTypeId":null,"controlDataExperiment.testSystemId":null,"controlDataExperiment.ic50ShiftExperimentId":null,"controlDataExperiment.controlDataExperimentId":null,"controlDataExperiment.controlDataForExperimentId":null,"controlDataExperiment.naturalProductSampleId":null,"controlDataExperiment.experimentType.id":null,"controlDataExperiment.experimentType.name":null,"controlDataExperiment.experimentType.isInVitro":null,"controlDataExperiment.experimentType.isTransporter":null,"controlDataExperiment.experimentType.isEnzyme":null,"controlDataExperiment.experimentType.purl":null,"controlDataExperiment.objectCompound.id":null,"controlDataExperiment.objectCompound.name":null,"controlDataExperiment.objectCompound.unii":null,"controlDataExperiment.objectCompound.inChIKey":null,"controlDataExperiment.objectCompound.publicDescription":null,"controlDataExperiment.objectCompound.internalComment":null,"controlDataExperiment.objectCompound.conceptId":null,"controlDataExperiment.objectCompound.enantiomerOfId":null,"controlDataExperiment.precipitantCompound.id":null,"controlDataExperiment.precipitantCompound.name":null,"controlDataExperiment.precipitantCompound.unii":null,"controlDataExperiment.precipitantCompound.inChIKey":null,"controlDataExperiment.precipitantCompound.publicDescription":null,"controlDataExperiment.precipitantCompound.internalComment":null,"controlDataExperiment.precipitantCompound.conceptId":null,"controlDataExperiment.precipitantCompound.enantiomerOfId":null,"controlDataExperiment.objectMetaboliteCompound.id":null,"controlDataExperiment.objectMetaboliteCompound.name":null,"controlDataExperiment.objectMetaboliteCompound.unii":null,"controlDataExperiment.objectMetaboliteCompound.inChIKey":null,"controlDataExperiment.objectMetaboliteCompound.publicDescriptio":null,"controlDataExperiment.objectMetaboliteCompound.internalComment":null,"controlDataExperiment.objectMetaboliteCompound.conceptId":null,"controlDataExperiment.objectMetaboliteCompound.enantiomerOfId":null,"controlDataExperiment.enzymes.id":null,"controlDataExperiment.enzymes.name":null,"controlDataExperiment.enzymes.conceptId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.enzymeId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.experiment":null,"controlDataExperiment.transporters.id":null,"controlDataExperiment.transporters.name":null,"controlDataExperiment.transporters.conceptId":null,"controlDataExperiment.transporters.experiment_transporter_xref.":null,"controlDataExperiment.quantifiedMetabolites.id":null,"controlDataExperiment.quantifiedMetabolites.name":null,"controlDataExperiment.quantifiedMetabolites.unii":null,"controlDataExperiment.quantifiedMetabolites.inChIKey":null,"controlDataExperiment.quantifiedMetabolites.publicDescription":null,"controlDataExperiment.quantifiedMetabolites.internalComment":null,"controlDataExperiment.quantifiedMetabolites.conceptId":null,"controlDataExperiment.quantifiedMetabolites.enantiomerOfId":null,"controlDataExperiment.quantifiedMetabolites.experiment_quantifi":null,"experimentAnswers.id":7010,"experimentAnswers.text":null,"experimentAnswers.answerId":102,"experimentAnswers.experimentId":297,"experimentAnswers.questionId":100,"experimentAnswers.question.id":100,"experimentAnswers.question.text":"Study 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis canadensis","study.naturalProduct.name":"Goldenseal","study.naturalProduct.itis":null,"study.naturalProduct.srs":"66690655-f406-4d67-96e3-2066aafee8d5","study.naturalProduct.source_id":"","study.naturalProduct.conceptId":null,"study.naturalProduct.concept.conceptId":null,"study.naturalProduct.concept.conceptName":null,"study.naturalProduct.concept.domainId":null,"study.naturalProduct.concept.vocabularyId":null,"study.naturalProduct.concept.conceptClassId":null,"study.naturalProduct.concept.standardConcept":null,"study.naturalProduct.concept.conceptCode":null,"study.naturalProduct.concept.validStartDate":null,"study.naturalProduct.concept.validEndDate":null,"study.naturalProduct.concept.invalid_reason":null,"study.compound.id":null,"study.compound.name":null,"study.compound.unii":null,"study.compound.inChIKey":null,"study.compound.publicDescription":null,"study.compound.internalComment":null,"study.compound.conceptId":null,"study.compound.enantiomerOfId":null,"study.studySourceType.id":1,"study.studySourceType.name":"Published report","testSystem.id":null,"testSystem.name":null,"testSystem.sortOrder":null,"testSystem.conceptId":null,"testSystem.categoryId":null,"testSystem.category.id":null,"testSystem.category.name":null,"testSystem.category.sortOrder":null,"testSystem.category.requiresCytochromeB5":null,"cytochromeB5.id":null,"cytochromeB5.name":null,"cytochromeB5.sortOrder":null,"cytochromeB5.conceptId":null,"controlDataExperiment.id":null,"controlDataExperiment.uid":null,"controlDataExperiment.name":null,"controlDataExperiment.overallEffect":null,"controlDataExperiment.isControlData":null,"controlDataExperiment.isIc50Shift":null,"controlDataExperiment.croCutoff":null,"controlDataExperiment.croIdentifier":null,"controlDataExperiment.comment":null,"controlDataExperiment.experimentalConditionsComment":null,"controlDataExperiment.resultsComment":null,"controlDataExperiment.internalComment":null,"controlDataExperiment.objectCompoundId":null,"controlDataExperiment.objectMetaboliteCompoundId":null,"controlDataExperiment.precipitantCompoundId":null,"controlDataExperiment.cytochromeB5Id":null,"controlDataExperiment.studyId":null,"controlDataExperiment.experimentTypeId":null,"controlDataExperiment.testSystemId":null,"controlDataExperiment.ic50ShiftExperimentId":null,"controlDataExperiment.controlDataExperimentId":null,"controlDataExperiment.controlDataForExperimentId":null,"controlDataExperiment.naturalProductSampleId":null,"controlDataExperiment.experimentType.id":null,"controlDataExperiment.experimentType.name":null,"controlDataExperiment.experimentType.isInVitro":null,"controlDataExperiment.experimentType.isTransporter":null,"controlDataExperiment.experimentType.isEnzyme":null,"controlDataExperiment.experimentType.purl":null,"controlDataExperiment.objectCompound.id":null,"controlDataExperiment.objectCompound.name":null,"controlDataExperiment.objectCompound.unii":null,"controlDataExperiment.objectCompound.inChIKey":null,"controlDataExperiment.objectCompound.publicDescription":null,"controlDataExperiment.objectCompound.internalComment":null,"controlDataExperiment.objectCompound.conceptId":null,"controlDataExperiment.objectCompound.enantiomerOfId":null,"controlDataExperiment.precipitantCompound.id":null,"controlDataExperiment.precipitantCompound.name":null,"controlDataExperiment.precipitantCompound.unii":null,"controlDataExperiment.precipitantCompound.inChIKey":null,"controlDataExperiment.precipitantCompound.publicDescription":null,"controlDataExperiment.precipitantCompound.internalComment":null,"controlDataExperiment.precipitantCompound.conceptId":null,"controlDataExperiment.precipitantCompound.enantiomerOfId":null,"controlDataExperiment.objectMetaboliteCompound.id":null,"controlDataExperiment.objectMetaboliteCompound.name":null,"controlDataExperiment.objectMetaboliteCompound.unii":null,"controlDataExperiment.objectMetaboliteCompound.inChIKey":null,"controlDataExperiment.objectMetaboliteCompound.publicDescriptio":null,"controlDataExperiment.objectMetaboliteCompound.internalComment":null,"controlDataExperiment.objectMetaboliteCompound.conceptId":null,"controlDataExperiment.objectMetaboliteCompound.enantiomerOfId":null,"controlDataExperiment.enzymes.id":null,"controlDataExperiment.enzymes.name":null,"controlDataExperiment.enzymes.conceptId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.enzymeId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.experiment":null,"controlDataExperiment.transporters.id":null,"controlDataExperiment.transporters.name":null,"controlDataExperiment.transporters.conceptId":null,"controlDataExperiment.transporters.experiment_transporter_xref.":null,"controlDataExperiment.quantifiedMetabolites.id":null,"controlDataExperiment.quantifiedMetabolites.name":null,"controlDataExperiment.quantifiedMetabolites.unii":null,"controlDataExperiment.quantifiedMetabolites.inChIKey":null,"controlDataExperiment.quantifiedMetabolites.publicDescription":null,"controlDataExperiment.quantifiedMetabolites.internalComment":null,"controlDataExperiment.quantifiedMetabolites.conceptId":null,"controlDataExperiment.quantifiedMetabolites.enantiomerOfId":null,"controlDataExperiment.quantifiedMetabolites.experiment_quantifi":null,"experimentAnswers.id":7011,"experimentAnswers.text":null,"experimentAnswers.answerId":107,"experimentAnswers.experimentId":297,"experimentAnswers.questionId":100,"experimentAnswers.question.id":100,"experimentAnswers.question.text":"Study design","experimentAnswers.question.required":true,"experimentAnswers.question.maxAnswers":100,"experimentAnswers.question.type":null,"experimentAnswers.question.conceptId":null,"experimentAnswers.question.answers.id":101,"experimentAnswers.question.answers.text":"Double-blind","experimentAnswers.question.answers.sortOrder":20,"experimentAnswers.question.answers.conceptId":null,"experimentAnswers.question.answers.questionId":100,"experimentAnswers.answer.id":107,"experimentAnswers.answer.text":"Multiple dosing","experimentAnswers.answer.sortOrder":80,"experimentAnswers.answer.conceptId":null,"experimentAnswers.answer.questionId":100},{"id":297,"uid":"NPDI-Bi2fGw","name":"CYP3A4 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Interaction","experimentType.isInVitro":false,"experimentType.isTransporter":false,"experimentType.isEnzyme":false,"experimentType.purl":"http://purl.obolibrary.org/obo/DIDEO_00000071","objectCompound.id":26,"objectCompound.name":"midazolam","objectCompound.unii":"R60L0SM5BC","objectCompound.inChIKey":"DDLIGBOFAVUZHB-UHFFFAOYSA-N","objectCompound.publicDescription":null,"objectCompound.internalComment":null,"objectCompound.conceptId":708298,"objectCompound.enantiomerOfId":null,"objectCompound.concept.conceptId":708298,"objectCompound.concept.conceptName":"Midazolam","objectCompound.concept.domainId":"Drug","objectCompound.concept.vocabularyId":"RxNorm","objectCompound.concept.conceptClassId":"Ingredient","objectCompound.concept.standardConcept":"S","objectCompound.concept.conceptCode":"6960","objectCompound.concept.validStartDate":"1970-01-01T00:00:00.000Z","objectCompound.concept.validEndDate":"2099-12-31T00:00:00.000Z","objectCompound.concept.invalid_reason":null,"precipitantCompound.id":127,"precipitantCompound.name":"goldenseal 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis 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design","experimentAnswers.question.required":true,"experimentAnswers.question.maxAnswers":100,"experimentAnswers.question.type":null,"experimentAnswers.question.conceptId":null,"experimentAnswers.question.answers.id":107,"experimentAnswers.question.answers.text":"Multiple dosing","experimentAnswers.question.answers.sortOrder":80,"experimentAnswers.question.answers.conceptId":null,"experimentAnswers.question.answers.questionId":100,"experimentAnswers.answer.id":107,"experimentAnswers.answer.text":"Multiple dosing","experimentAnswers.answer.sortOrder":80,"experimentAnswers.answer.conceptId":null,"experimentAnswers.answer.questionId":100},{"id":297,"uid":"NPDI-Bi2fGw","name":"CYP3A4 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Interaction","experimentType.isInVitro":false,"experimentType.isTransporter":false,"experimentType.isEnzyme":false,"experimentType.purl":"http://purl.obolibrary.org/obo/DIDEO_00000071","objectCompound.id":26,"objectCompound.name":"midazolam","objectCompound.unii":"R60L0SM5BC","objectCompound.inChIKey":"DDLIGBOFAVUZHB-UHFFFAOYSA-N","objectCompound.publicDescription":null,"objectCompound.internalComment":null,"objectCompound.conceptId":708298,"objectCompound.enantiomerOfId":null,"objectCompound.concept.conceptId":708298,"objectCompound.concept.conceptName":"Midazolam","objectCompound.concept.domainId":"Drug","objectCompound.concept.vocabularyId":"RxNorm","objectCompound.concept.conceptClassId":"Ingredient","objectCompound.concept.standardConcept":"S","objectCompound.concept.conceptCode":"6960","objectCompound.concept.validStartDate":"1970-01-01T00:00:00.000Z","objectCompound.concept.validEndDate":"2099-12-31T00:00:00.000Z","objectCompound.concept.invalid_reason":null,"precipitantCompound.id":127,"precipitantCompound.name":"goldenseal 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis canadensis","study.naturalProduct.name":"Goldenseal","study.naturalProduct.itis":null,"study.naturalProduct.srs":"66690655-f406-4d67-96e3-2066aafee8d5","study.naturalProduct.source_id":"","study.naturalProduct.conceptId":null,"study.naturalProduct.concept.conceptId":null,"study.naturalProduct.concept.conceptName":null,"study.naturalProduct.concept.domainId":null,"study.naturalProduct.concept.vocabularyId":null,"study.naturalProduct.concept.conceptClassId":null,"study.naturalProduct.concept.standardConcept":null,"study.naturalProduct.concept.conceptCode":null,"study.naturalProduct.concept.validStartDate":null,"study.naturalProduct.concept.validEndDate":null,"study.naturalProduct.concept.invalid_reason":null,"study.compound.id":null,"study.compound.name":null,"study.compound.unii":null,"study.compound.inChIKey":null,"study.compound.publicDescription":null,"study.compound.internalComment":null,"study.compound.conceptId":null,"study.compound.enantiomerOfId":null,"study.studySourceType.id":1,"study.studySourceType.name":"Published report","testSystem.id":null,"testSystem.name":null,"testSystem.sortOrder":null,"testSystem.conceptId":null,"testSystem.categoryId":null,"testSystem.category.id":null,"testSystem.category.name":null,"testSystem.category.sortOrder":null,"testSystem.category.requiresCytochromeB5":null,"cytochromeB5.id":null,"cytochromeB5.name":null,"cytochromeB5.sortOrder":null,"cytochromeB5.conceptId":null,"controlDataExperiment.id":null,"controlDataExperiment.uid":null,"controlDataExperiment.name":null,"controlDataExperiment.overallEffect":null,"controlDataExperiment.isControlData":null,"controlDataExperiment.isIc50Shift":null,"controlDataExperiment.croCutoff":null,"controlDataExperiment.croIdentifier":null,"controlDataExperiment.comment":null,"controlDataExperiment.experimentalConditionsComment":null,"controlDataExperiment.resultsComment":null,"controlDataExperiment.internalComment":null,"controlDataExperiment.objectCompoundId":null,"controlDataExperiment.objectMetaboliteCompoundId":null,"controlDataExperiment.precipitantCompoundId":null,"controlDataExperiment.cytochromeB5Id":null,"controlDataExperiment.studyId":null,"controlDataExperiment.experimentTypeId":null,"controlDataExperiment.testSystemId":null,"controlDataExperiment.ic50ShiftExperimentId":null,"controlDataExperiment.controlDataExperimentId":null,"controlDataExperiment.controlDataForExperimentId":null,"controlDataExperiment.naturalProductSampleId":null,"controlDataExperiment.experimentType.id":null,"controlDataExperiment.experimentType.name":null,"controlDataExperiment.experimentType.isInVitro":null,"controlDataExperiment.experimentType.isTransporter":null,"controlDataExperiment.experimentType.isEnzyme":null,"controlDataExperiment.experimentType.purl":null,"controlDataExperiment.objectCompound.id":null,"controlDataExperiment.objectCompound.name":null,"controlDataExperiment.objectCompound.unii":null,"controlDataExperiment.objectCompound.inChIKey":null,"controlDataExperiment.objectCompound.publicDescription":null,"controlDataExperiment.objectCompound.internalComment":null,"controlDataExperiment.objectCompound.conceptId":null,"controlDataExperiment.objectCompound.enantiomerOfId":null,"controlDataExperiment.precipitantCompound.id":null,"controlDataExperiment.precipitantCompound.name":null,"controlDataExperiment.precipitantCompound.unii":null,"controlDataExperiment.precipitantCompound.inChIKey":null,"controlDataExperiment.precipitantCompound.publicDescription":null,"controlDataExperiment.precipitantCompound.internalComment":null,"controlDataExperiment.precipitantCompound.conceptId":null,"controlDataExperiment.precipitantCompound.enantiomerOfId":null,"controlDataExperiment.objectMetaboliteCompound.id":null,"controlDataExperiment.objectMetaboliteCompound.name":null,"controlDataExperiment.objectMetaboliteCompound.unii":null,"controlDataExperiment.objectMetaboliteCompound.inChIKey":null,"controlDataExperiment.objectMetaboliteCompound.publicDescriptio":null,"controlDataExperiment.objectMetaboliteCompound.internalComment":null,"controlDataExperiment.objectMetaboliteCompound.conceptId":null,"controlDataExperiment.objectMetaboliteCompound.enantiomerOfId":null,"controlDataExperiment.enzymes.id":null,"controlDataExperiment.enzymes.name":null,"controlDataExperiment.enzymes.conceptId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.enzymeId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.experiment":null,"controlDataExperiment.transporters.id":null,"controlDataExperiment.transporters.name":null,"controlDataExperiment.transporters.conceptId":null,"controlDataExperiment.transporters.experiment_transporter_xref.":null,"controlDataExperiment.quantifiedMetabolites.id":null,"controlDataExperiment.quantifiedMetabolites.name":null,"controlDataExperiment.quantifiedMetabolites.unii":null,"controlDataExperiment.quantifiedMetabolites.inChIKey":null,"controlDataExperiment.quantifiedMetabolites.publicDescription":null,"controlDataExperiment.quantifiedMetabolites.internalComment":null,"controlDataExperiment.quantifiedMetabolites.conceptId":null,"controlDataExperiment.quantifiedMetabolites.enantiomerOfId":null,"controlDataExperiment.quantifiedMetabolites.experiment_quantifi":null,"experimentAnswers.id":7011,"experimentAnswers.text":null,"experimentAnswers.answerId":107,"experimentAnswers.experimentId":297,"experimentAnswers.questionId":100,"experimentAnswers.question.id":100,"experimentAnswers.question.text":"Study design","experimentAnswers.question.required":true,"experimentAnswers.question.maxAnswers":100,"experimentAnswers.question.type":null,"experimentAnswers.question.conceptId":null,"experimentAnswers.question.answers.id":104,"experimentAnswers.question.answers.text":"Placebo-controlled","experimentAnswers.question.answers.sortOrder":50,"experimentAnswers.question.answers.conceptId":null,"experimentAnswers.question.answers.questionId":100,"experimentAnswers.answer.id":107,"experimentAnswers.answer.text":"Multiple dosing","experimentAnswers.answer.sortOrder":80,"experimentAnswers.answer.conceptId":null,"experimentAnswers.answer.questionId":100},{"id":297,"uid":"NPDI-Bi2fGw","name":"CYP3A4 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Interaction","experimentType.isInVitro":false,"experimentType.isTransporter":false,"experimentType.isEnzyme":false,"experimentType.purl":"http://purl.obolibrary.org/obo/DIDEO_00000071","objectCompound.id":26,"objectCompound.name":"midazolam","objectCompound.unii":"R60L0SM5BC","objectCompound.inChIKey":"DDLIGBOFAVUZHB-UHFFFAOYSA-N","objectCompound.publicDescription":null,"objectCompound.internalComment":null,"objectCompound.conceptId":708298,"objectCompound.enantiomerOfId":null,"objectCompound.concept.conceptId":708298,"objectCompound.concept.conceptName":"Midazolam","objectCompound.concept.domainId":"Drug","objectCompound.concept.vocabularyId":"RxNorm","objectCompound.concept.conceptClassId":"Ingredient","objectCompound.concept.standardConcept":"S","objectCompound.concept.conceptCode":"6960","objectCompound.concept.validStartDate":"1970-01-01T00:00:00.000Z","objectCompound.concept.validEndDate":"2099-12-31T00:00:00.000Z","objectCompound.concept.invalid_reason":null,"precipitantCompound.id":127,"precipitantCompound.name":"goldenseal 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis canadensis","study.naturalProduct.name":"Goldenseal","study.naturalProduct.itis":null,"study.naturalProduct.srs":"66690655-f406-4d67-96e3-2066aafee8d5","study.naturalProduct.source_id":"","study.naturalProduct.conceptId":null,"study.naturalProduct.concept.conceptId":null,"study.naturalProduct.concept.conceptName":null,"study.naturalProduct.concept.domainId":null,"study.naturalProduct.concept.vocabularyId":null,"study.naturalProduct.concept.conceptClassId":null,"study.naturalProduct.concept.standardConcept":null,"study.naturalProduct.concept.conceptCode":null,"study.naturalProduct.concept.validStartDate":null,"study.naturalProduct.concept.validEndDate":null,"study.naturalProduct.concept.invalid_reason":null,"study.compound.id":null,"study.compound.name":null,"study.compound.unii":null,"study.compound.inChIKey":null,"study.compound.publicDescription":null,"study.compound.internalComment":null,"study.compound.conceptId":null,"study.compound.enantiomerOfId":null,"study.studySourceType.id":1,"study.studySourceType.name":"Published report","testSystem.id":null,"testSystem.name":null,"testSystem.sortOrder":null,"testSystem.conceptId":null,"testSystem.categoryId":null,"testSystem.category.id":null,"testSystem.category.name":null,"testSystem.category.sortOrder":null,"testSystem.category.requiresCytochromeB5":null,"cytochromeB5.id":null,"cytochromeB5.name":null,"cytochromeB5.sortOrder":null,"cytochromeB5.conceptId":null,"controlDataExperiment.id":null,"controlDataExperiment.uid":null,"controlDataExperiment.name":null,"controlDataExperiment.overallEffect":null,"controlDataExperiment.isControlData":null,"controlDataExperiment.isIc50Shift":null,"controlDataExperiment.croCutoff":null,"controlDataExperiment.croIdentifier":null,"controlDataExperiment.comment":null,"controlDataExperiment.experimentalConditionsComment":null,"controlDataExperiment.resultsComment":null,"controlDataExperiment.internalComment":null,"controlDataExperiment.objectCompoundId":null,"controlDataExperiment.objectMetaboliteCompoundId":null,"controlDataExperiment.precipitantCompoundId":null,"controlDataExperiment.cytochromeB5Id":null,"controlDataExperiment.studyId":null,"controlDataExperiment.experimentTypeId":null,"controlDataExperiment.testSystemId":null,"controlDataExperiment.ic50ShiftExperimentId":null,"controlDataExperiment.controlDataExperimentId":null,"controlDataExperiment.controlDataForExperimentId":null,"controlDataExperiment.naturalProductSampleId":null,"controlDataExperiment.experimentType.id":null,"controlDataExperiment.experimentType.name":null,"controlDataExperiment.experimentType.isInVitro":null,"controlDataExperiment.experimentType.isTransporter":null,"controlDataExperiment.experimentType.isEnzyme":null,"controlDataExperiment.experimentType.purl":null,"controlDataExperiment.objectCompound.id":null,"controlDataExperiment.objectCompound.name":null,"controlDataExperiment.objectCompound.unii":null,"controlDataExperiment.objectCompound.inChIKey":null,"controlDataExperiment.objectCompound.publicDescription":null,"controlDataExperiment.objectCompound.internalComment":null,"controlDataExperiment.objectCompound.conceptId":null,"controlDataExperiment.objectCompound.enantiomerOfId":null,"controlDataExperiment.precipitantCompound.id":null,"controlDataExperiment.precipitantCompound.name":null,"controlDataExperiment.precipitantCompound.unii":null,"controlDataExperiment.precipitantCompound.inChIKey":null,"controlDataExperiment.precipitantCompound.publicDescription":null,"controlDataExperiment.precipitantCompound.internalComment":null,"controlDataExperiment.precipitantCompound.conceptId":null,"controlDataExperiment.precipitantCompound.enantiomerOfId":null,"controlDataExperiment.objectMetaboliteCompound.id":null,"controlDataExperiment.objectMetaboliteCompound.name":null,"controlDataExperiment.objectMetaboliteCompound.unii":null,"controlDataExperiment.objectMetaboliteCompound.inChIKey":null,"controlDataExperiment.objectMetaboliteCompound.publicDescriptio":null,"controlDataExperiment.objectMetaboliteCompound.internalComment":null,"controlDataExperiment.objectMetaboliteCompound.conceptId":null,"controlDataExperiment.objectMetaboliteCompound.enantiomerOfId":null,"controlDataExperiment.enzymes.id":null,"controlDataExperiment.enzymes.name":null,"controlDataExperiment.enzymes.conceptId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.enzymeId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.experiment":null,"controlDataExperiment.transporters.id":null,"controlDataExperiment.transporters.name":null,"controlDataExperiment.transporters.conceptId":null,"controlDataExperiment.transporters.experiment_transporter_xref.":null,"controlDataExperiment.quantifiedMetabolites.id":null,"controlDataExperiment.quantifiedMetabolites.name":null,"controlDataExperiment.quantifiedMetabolites.unii":null,"controlDataExperiment.quantifiedMetabolites.inChIKey":null,"controlDataExperiment.quantifiedMetabolites.publicDescription":null,"controlDataExperiment.quantifiedMetabolites.internalComment":null,"controlDataExperiment.quantifiedMetabolites.conceptId":null,"controlDataExperiment.quantifiedMetabolites.enantiomerOfId":null,"controlDataExperiment.quantifiedMetabolites.experiment_quantifi":null,"experimentAnswers.id":7011,"experimentAnswers.text":null,"experimentAnswers.answerId":107,"experimentAnswers.experimentId":297,"experimentAnswers.questionId":100,"experimentAnswers.question.id":100,"experimentAnswers.question.text":"Study 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Interaction","experimentType.isInVitro":false,"experimentType.isTransporter":false,"experimentType.isEnzyme":false,"experimentType.purl":"http://purl.obolibrary.org/obo/DIDEO_00000071","objectCompound.id":26,"objectCompound.name":"midazolam","objectCompound.unii":"R60L0SM5BC","objectCompound.inChIKey":"DDLIGBOFAVUZHB-UHFFFAOYSA-N","objectCompound.publicDescription":null,"objectCompound.internalComment":null,"objectCompound.conceptId":708298,"objectCompound.enantiomerOfId":null,"objectCompound.concept.conceptId":708298,"objectCompound.concept.conceptName":"Midazolam","objectCompound.concept.domainId":"Drug","objectCompound.concept.vocabularyId":"RxNorm","objectCompound.concept.conceptClassId":"Ingredient","objectCompound.concept.standardConcept":"S","objectCompound.concept.conceptCode":"6960","objectCompound.concept.validStartDate":"1970-01-01T00:00:00.000Z","objectCompound.concept.validEndDate":"2099-12-31T00:00:00.000Z","objectCompound.concept.invalid_reason":null,"precipitantCompound.id":127,"precipitantCompound.name":"goldenseal 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis 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characteristics","experimentAnswers.question.required":true,"experimentAnswers.question.maxAnswers":100,"experimentAnswers.question.type":null,"experimentAnswers.question.conceptId":null,"experimentAnswers.question.answers.id":202,"experimentAnswers.question.answers.text":"Healthy volunteers","experimentAnswers.question.answers.sortOrder":null,"experimentAnswers.question.answers.conceptId":null,"experimentAnswers.question.answers.questionId":101,"experimentAnswers.answer.id":200,"experimentAnswers.answer.text":"Males","experimentAnswers.answer.sortOrder":null,"experimentAnswers.answer.conceptId":null,"experimentAnswers.answer.questionId":101},{"id":297,"uid":"NPDI-Bi2fGw","name":"CYP3A4 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Interaction","experimentType.isInVitro":false,"experimentType.isTransporter":false,"experimentType.isEnzyme":false,"experimentType.purl":"http://purl.obolibrary.org/obo/DIDEO_00000071","objectCompound.id":26,"objectCompound.name":"midazolam","objectCompound.unii":"R60L0SM5BC","objectCompound.inChIKey":"DDLIGBOFAVUZHB-UHFFFAOYSA-N","objectCompound.publicDescription":null,"objectCompound.internalComment":null,"objectCompound.conceptId":708298,"objectCompound.enantiomerOfId":null,"objectCompound.concept.conceptId":708298,"objectCompound.concept.conceptName":"Midazolam","objectCompound.concept.domainId":"Drug","objectCompound.concept.vocabularyId":"RxNorm","objectCompound.concept.conceptClassId":"Ingredient","objectCompound.concept.standardConcept":"S","objectCompound.concept.conceptCode":"6960","objectCompound.concept.validStartDate":"1970-01-01T00:00:00.000Z","objectCompound.concept.validEndDate":"2099-12-31T00:00:00.000Z","objectCompound.concept.invalid_reason":null,"precipitantCompound.id":127,"precipitantCompound.name":"goldenseal 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis canadensis","study.naturalProduct.name":"Goldenseal","study.naturalProduct.itis":null,"study.naturalProduct.srs":"66690655-f406-4d67-96e3-2066aafee8d5","study.naturalProduct.source_id":"","study.naturalProduct.conceptId":null,"study.naturalProduct.concept.conceptId":null,"study.naturalProduct.concept.conceptName":null,"study.naturalProduct.concept.domainId":null,"study.naturalProduct.concept.vocabularyId":null,"study.naturalProduct.concept.conceptClassId":null,"study.naturalProduct.concept.standardConcept":null,"study.naturalProduct.concept.conceptCode":null,"study.naturalProduct.concept.validStartDate":null,"study.naturalProduct.concept.validEndDate":null,"study.naturalProduct.concept.invalid_reason":null,"study.compound.id":null,"study.compound.name":null,"study.compound.unii":null,"study.compound.inChIKey":null,"study.compound.publicDescription":null,"study.compound.internalComment":null,"study.compound.conceptId":null,"study.compound.enantiomerOfId":null,"study.studySourceType.id":1,"study.studySourceType.name":"Published report","testSystem.id":null,"testSystem.name":null,"testSystem.sortOrder":null,"testSystem.conceptId":null,"testSystem.categoryId":null,"testSystem.category.id":null,"testSystem.category.name":null,"testSystem.category.sortOrder":null,"testSystem.category.requiresCytochromeB5":null,"cytochromeB5.id":null,"cytochromeB5.name":null,"cytochromeB5.sortOrder":null,"cytochromeB5.conceptId":null,"controlDataExperiment.id":null,"controlDataExperiment.uid":null,"controlDataExperiment.name":null,"controlDataExperiment.overallEffect":null,"controlDataExperiment.isControlData":null,"controlDataExperiment.isIc50Shift":null,"controlDataExperiment.croCutoff":null,"controlDataExperiment.croIdentifier":null,"controlDataExperiment.comment":null,"controlDataExperiment.experimentalConditionsComment":null,"controlDataExperiment.resultsComment":null,"controlDataExperiment.internalComment":null,"controlDataExperiment.objectCompoundId":null,"controlDataExperiment.objectMetaboliteCompoundId":null,"controlDataExperiment.precipitantCompoundId":null,"controlDataExperiment.cytochromeB5Id":null,"controlDataExperiment.studyId":null,"controlDataExperiment.experimentTypeId":null,"controlDataExperiment.testSystemId":null,"controlDataExperiment.ic50ShiftExperimentId":null,"controlDataExperiment.controlDataExperimentId":null,"controlDataExperiment.controlDataForExperimentId":null,"controlDataExperiment.naturalProductSampleId":null,"controlDataExperiment.experimentType.id":null,"controlDataExperiment.experimentType.name":null,"controlDataExperiment.experimentType.isInVitro":null,"controlDataExperiment.experimentType.isTransporter":null,"controlDataExperiment.experimentType.isEnzyme":null,"controlDataExperiment.experimentType.purl":null,"controlDataExperiment.objectCompound.id":null,"controlDataExperiment.objectCompound.name":null,"controlDataExperiment.objectCompound.unii":null,"controlDataExperiment.objectCompound.inChIKey":null,"controlDataExperiment.objectCompound.publicDescription":null,"controlDataExperiment.objectCompound.internalComment":null,"controlDataExperiment.objectCompound.conceptId":null,"controlDataExperiment.objectCompound.enantiomerOfId":null,"controlDataExperiment.precipitantCompound.id":null,"controlDataExperiment.precipitantCompound.name":null,"controlDataExperiment.precipitantCompound.unii":null,"controlDataExperiment.precipitantCompound.inChIKey":null,"controlDataExperiment.precipitantCompound.publicDescription":null,"controlDataExperiment.precipitantCompound.internalComment":null,"controlDataExperiment.precipitantCompound.conceptId":null,"controlDataExperiment.precipitantCompound.enantiomerOfId":null,"controlDataExperiment.objectMetaboliteCompound.id":null,"controlDataExperiment.objectMetaboliteCompound.name":null,"controlDataExperiment.objectMetaboliteCompound.unii":null,"controlDataExperiment.objectMetaboliteCompound.inChIKey":null,"controlDataExperiment.objectMetaboliteCompound.publicDescriptio":null,"controlDataExperiment.objectMetaboliteCompound.internalComment":null,"controlDataExperiment.objectMetaboliteCompound.conceptId":null,"controlDataExperiment.objectMetaboliteCompound.enantiomerOfId":null,"controlDataExperiment.enzymes.id":null,"controlDataExperiment.enzymes.name":null,"controlDataExperiment.enzymes.conceptId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.enzymeId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.experiment":null,"controlDataExperiment.transporters.id":null,"controlDataExperiment.transporters.name":null,"controlDataExperiment.transporters.conceptId":null,"controlDataExperiment.transporters.experiment_transporter_xref.":null,"controlDataExperiment.quantifiedMetabolites.id":null,"controlDataExperiment.quantifiedMetabolites.name":null,"controlDataExperiment.quantifiedMetabolites.unii":null,"controlDataExperiment.quantifiedMetabolites.inChIKey":null,"controlDataExperiment.quantifiedMetabolites.publicDescription":null,"controlDataExperiment.quantifiedMetabolites.internalComment":null,"controlDataExperiment.quantifiedMetabolites.conceptId":null,"controlDataExperiment.quantifiedMetabolites.enantiomerOfId":null,"controlDataExperiment.quantifiedMetabolites.experiment_quantifi":null,"experimentAnswers.id":7004,"experimentAnswers.text":null,"experimentAnswers.answerId":200,"experimentAnswers.experimentId":297,"experimentAnswers.questionId":101,"experimentAnswers.question.id":101,"experimentAnswers.question.text":"Demographic characteristics","experimentAnswers.question.required":true,"experimentAnswers.question.maxAnswers":100,"experimentAnswers.question.type":null,"experimentAnswers.question.conceptId":null,"experimentAnswers.question.answers.id":203,"experimentAnswers.question.answers.text":"Patients","experimentAnswers.question.answers.sortOrder":null,"experimentAnswers.question.answers.conceptId":null,"experimentAnswers.question.answers.questionId":101,"experimentAnswers.answer.id":200,"experimentAnswers.answer.text":"Males","experimentAnswers.answer.sortOrder":null,"experimentAnswers.answer.conceptId":null,"experimentAnswers.answer.questionId":101},{"id":297,"uid":"NPDI-Bi2fGw","name":"CYP3A4 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Interaction","experimentType.isInVitro":false,"experimentType.isTransporter":false,"experimentType.isEnzyme":false,"experimentType.purl":"http://purl.obolibrary.org/obo/DIDEO_00000071","objectCompound.id":26,"objectCompound.name":"midazolam","objectCompound.unii":"R60L0SM5BC","objectCompound.inChIKey":"DDLIGBOFAVUZHB-UHFFFAOYSA-N","objectCompound.publicDescription":null,"objectCompound.internalComment":null,"objectCompound.conceptId":708298,"objectCompound.enantiomerOfId":null,"objectCompound.concept.conceptId":708298,"objectCompound.concept.conceptName":"Midazolam","objectCompound.concept.domainId":"Drug","objectCompound.concept.vocabularyId":"RxNorm","objectCompound.concept.conceptClassId":"Ingredient","objectCompound.concept.standardConcept":"S","objectCompound.concept.conceptCode":"6960","objectCompound.concept.validStartDate":"1970-01-01T00:00:00.000Z","objectCompound.concept.validEndDate":"2099-12-31T00:00:00.000Z","objectCompound.concept.invalid_reason":null,"precipitantCompound.id":127,"precipitantCompound.name":"goldenseal 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extract","precipitantCompound.unii":null,"precipitantCompound.inChIKey":null,"precipitantCompound.publicDescription":null,"precipitantCompound.internalComment":null,"precipitantCompound.conceptId":null,"precipitantCompound.enantiomerOfId":null,"precipitantCompound.concept.conceptId":null,"precipitantCompound.concept.conceptName":null,"precipitantCompound.concept.domainId":null,"precipitantCompound.concept.vocabularyId":null,"precipitantCompound.concept.conceptClassId":null,"precipitantCompound.concept.standardConcept":null,"precipitantCompound.concept.conceptCode":null,"precipitantCompound.concept.validStartDate":null,"precipitantCompound.concept.validEndDate":null,"precipitantCompound.concept.invalid_reason":null,"objectMetaboliteCompound.id":null,"objectMetaboliteCompound.name":null,"objectMetaboliteCompound.unii":null,"objectMetaboliteCompound.inChIKey":null,"objectMetaboliteCompound.publicDescription":null,"objectMetaboliteCompound.internalComment":null,"objectMetaboliteCompound.conceptId":null,"objectMetaboliteCompound.enantiomerOfId":null,"objectMetaboliteCompound.concept.conceptId":null,"objectMetaboliteCompound.concept.conceptName":null,"objectMetaboliteCompound.concept.domainId":null,"objectMetaboliteCompound.concept.vocabularyId":null,"objectMetaboliteCompound.concept.conceptClassId":null,"objectMetaboliteCompound.concept.standardConcept":null,"objectMetaboliteCompound.concept.conceptCode":null,"objectMetaboliteCompound.concept.validStartDate":null,"objectMetaboliteCompound.concept.validEndDate":null,"objectMetaboliteCompound.concept.invalid_reason":null,"enzymes.id":13,"enzymes.name":"CYP3A4","enzymes.conceptId":4306811,"enzymes.experiment_enzyme_xref.enzymeId":13,"enzymes.experiment_enzyme_xref.experimentId":297,"transporters.id":null,"transporters.name":null,"transporters.conceptId":null,"transporters.experiment_transporter_xref.experimentId":null,"transporters.experiment_transporter_xref.transporterId":null,"quantifiedMetabolites.id":null,"quantifiedMetabolites.name":null,"quantifiedMetabolites.unii":null,"quantifiedMetabolites.inChIKey":null,"quantifiedMetabolites.publicDescription":null,"quantifiedMetabolites.internalComment":null,"quantifiedMetabolites.conceptId":null,"quantifiedMetabolites.enantiomerOfId":null,"quantifiedMetabolites.experiment_quantified_metabolite_xref.com":null,"quantifiedMetabolites.experiment_quantified_metabolite_xref.exp":null,"study.id":73,"study.uid":"NPDI-ftEv0g","study.name":"In vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis 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characteristics","experimentAnswers.question.required":true,"experimentAnswers.question.maxAnswers":100,"experimentAnswers.question.type":null,"experimentAnswers.question.conceptId":null,"experimentAnswers.question.answers.id":202,"experimentAnswers.question.answers.text":"Healthy volunteers","experimentAnswers.question.answers.sortOrder":null,"experimentAnswers.question.answers.conceptId":null,"experimentAnswers.question.answers.questionId":101,"experimentAnswers.answer.id":201,"experimentAnswers.answer.text":"Females","experimentAnswers.answer.sortOrder":null,"experimentAnswers.answer.conceptId":null,"experimentAnswers.answer.questionId":101},{"id":297,"uid":"NPDI-Bi2fGw","name":"CYP3A4 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Interaction","experimentType.isInVitro":false,"experimentType.isTransporter":false,"experimentType.isEnzyme":false,"experimentType.purl":"http://purl.obolibrary.org/obo/DIDEO_00000071","objectCompound.id":26,"objectCompound.name":"midazolam","objectCompound.unii":"R60L0SM5BC","objectCompound.inChIKey":"DDLIGBOFAVUZHB-UHFFFAOYSA-N","objectCompound.publicDescription":null,"objectCompound.internalComment":null,"objectCompound.conceptId":708298,"objectCompound.enantiomerOfId":null,"objectCompound.concept.conceptId":708298,"objectCompound.concept.conceptName":"Midazolam","objectCompound.concept.domainId":"Drug","objectCompound.concept.vocabularyId":"RxNorm","objectCompound.concept.conceptClassId":"Ingredient","objectCompound.concept.standardConcept":"S","objectCompound.concept.conceptCode":"6960","objectCompound.concept.validStartDate":"1970-01-01T00:00:00.000Z","objectCompound.concept.validEndDate":"2099-12-31T00:00:00.000Z","objectCompound.concept.invalid_reason":null,"precipitantCompound.id":127,"precipitantCompound.name":"goldenseal 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis canadensis","study.naturalProduct.name":"Goldenseal","study.naturalProduct.itis":null,"study.naturalProduct.srs":"66690655-f406-4d67-96e3-2066aafee8d5","study.naturalProduct.source_id":"","study.naturalProduct.conceptId":null,"study.naturalProduct.concept.conceptId":null,"study.naturalProduct.concept.conceptName":null,"study.naturalProduct.concept.domainId":null,"study.naturalProduct.concept.vocabularyId":null,"study.naturalProduct.concept.conceptClassId":null,"study.naturalProduct.concept.standardConcept":null,"study.naturalProduct.concept.conceptCode":null,"study.naturalProduct.concept.validStartDate":null,"study.naturalProduct.concept.validEndDate":null,"study.naturalProduct.concept.invalid_reason":null,"study.compound.id":null,"study.compound.name":null,"study.compound.unii":null,"study.compound.inChIKey":null,"study.compound.publicDescription":null,"study.compound.internalComment":null,"study.compound.conceptId":null,"study.compound.enantiomerOfId":null,"study.studySourceType.id":1,"study.studySourceType.name":"Published report","testSystem.id":null,"testSystem.name":null,"testSystem.sortOrder":null,"testSystem.conceptId":null,"testSystem.categoryId":null,"testSystem.category.id":null,"testSystem.category.name":null,"testSystem.category.sortOrder":null,"testSystem.category.requiresCytochromeB5":null,"cytochromeB5.id":null,"cytochromeB5.name":null,"cytochromeB5.sortOrder":null,"cytochromeB5.conceptId":null,"controlDataExperiment.id":null,"controlDataExperiment.uid":null,"controlDataExperiment.name":null,"controlDataExperiment.overallEffect":null,"controlDataExperiment.isControlData":null,"controlDataExperiment.isIc50Shift":null,"controlDataExperiment.croCutoff":null,"controlDataExperiment.croIdentifier":null,"controlDataExperiment.comment":null,"controlDataExperiment.experimentalConditionsComment":null,"controlDataExperiment.resultsComment":null,"controlDataExperiment.internalComment":null,"controlDataExperiment.objectCompoundId":null,"controlDataExperiment.objectMetaboliteCompoundId":null,"controlDataExperiment.precipitantCompoundId":null,"controlDataExperiment.cytochromeB5Id":null,"controlDataExperiment.studyId":null,"controlDataExperiment.experimentTypeId":null,"controlDataExperiment.testSystemId":null,"controlDataExperiment.ic50ShiftExperimentId":null,"controlDataExperiment.controlDataExperimentId":null,"controlDataExperiment.controlDataForExperimentId":null,"controlDataExperiment.naturalProductSampleId":null,"controlDataExperiment.experimentType.id":null,"controlDataExperiment.experimentType.name":null,"controlDataExperiment.experimentType.isInVitro":null,"controlDataExperiment.experimentType.isTransporter":null,"controlDataExperiment.experimentType.isEnzyme":null,"controlDataExperiment.experimentType.purl":null,"controlDataExperiment.objectCompound.id":null,"controlDataExperiment.objectCompound.name":null,"controlDataExperiment.objectCompound.unii":null,"controlDataExperiment.objectCompound.inChIKey":null,"controlDataExperiment.objectCompound.publicDescription":null,"controlDataExperiment.objectCompound.internalComment":null,"controlDataExperiment.objectCompound.conceptId":null,"controlDataExperiment.objectCompound.enantiomerOfId":null,"controlDataExperiment.precipitantCompound.id":null,"controlDataExperiment.precipitantCompound.name":null,"controlDataExperiment.precipitantCompound.unii":null,"controlDataExperiment.precipitantCompound.inChIKey":null,"controlDataExperiment.precipitantCompound.publicDescription":null,"controlDataExperiment.precipitantCompound.internalComment":null,"controlDataExperiment.precipitantCompound.conceptId":null,"controlDataExperiment.precipitantCompound.enantiomerOfId":null,"controlDataExperiment.objectMetaboliteCompound.id":null,"controlDataExperiment.objectMetaboliteCompound.name":null,"controlDataExperiment.objectMetaboliteCompound.unii":null,"controlDataExperiment.objectMetaboliteCompound.inChIKey":null,"controlDataExperiment.objectMetaboliteCompound.publicDescriptio":null,"controlDataExperiment.objectMetaboliteCompound.internalComment":null,"controlDataExperiment.objectMetaboliteCompound.conceptId":null,"controlDataExperiment.objectMetaboliteCompound.enantiomerOfId":null,"controlDataExperiment.enzymes.id":null,"controlDataExperiment.enzymes.name":null,"controlDataExperiment.enzymes.conceptId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.enzymeId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.experiment":null,"controlDataExperiment.transporters.id":null,"controlDataExperiment.transporters.name":null,"controlDataExperiment.transporters.conceptId":null,"controlDataExperiment.transporters.experiment_transporter_xref.":null,"controlDataExperiment.quantifiedMetabolites.id":null,"controlDataExperiment.quantifiedMetabolites.name":null,"controlDataExperiment.quantifiedMetabolites.unii":null,"controlDataExperiment.quantifiedMetabolites.inChIKey":null,"controlDataExperiment.quantifiedMetabolites.publicDescription":null,"controlDataExperiment.quantifiedMetabolites.internalComment":null,"controlDataExperiment.quantifiedMetabolites.conceptId":null,"controlDataExperiment.quantifiedMetabolites.enantiomerOfId":null,"controlDataExperiment.quantifiedMetabolites.experiment_quantifi":null,"experimentAnswers.id":7005,"experimentAnswers.text":null,"experimentAnswers.answerId":201,"experimentAnswers.experimentId":297,"experimentAnswers.questionId":101,"experimentAnswers.question.id":101,"experimentAnswers.question.text":"Demographic 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Interaction","experimentType.isInVitro":false,"experimentType.isTransporter":false,"experimentType.isEnzyme":false,"experimentType.purl":"http://purl.obolibrary.org/obo/DIDEO_00000071","objectCompound.id":26,"objectCompound.name":"midazolam","objectCompound.unii":"R60L0SM5BC","objectCompound.inChIKey":"DDLIGBOFAVUZHB-UHFFFAOYSA-N","objectCompound.publicDescription":null,"objectCompound.internalComment":null,"objectCompound.conceptId":708298,"objectCompound.enantiomerOfId":null,"objectCompound.concept.conceptId":708298,"objectCompound.concept.conceptName":"Midazolam","objectCompound.concept.domainId":"Drug","objectCompound.concept.vocabularyId":"RxNorm","objectCompound.concept.conceptClassId":"Ingredient","objectCompound.concept.standardConcept":"S","objectCompound.concept.conceptCode":"6960","objectCompound.concept.validStartDate":"1970-01-01T00:00:00.000Z","objectCompound.concept.validEndDate":"2099-12-31T00:00:00.000Z","objectCompound.concept.invalid_reason":null,"precipitantCompound.id":127,"precipitantCompound.name":"goldenseal 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis canadensis","study.naturalProduct.name":"Goldenseal","study.naturalProduct.itis":null,"study.naturalProduct.srs":"66690655-f406-4d67-96e3-2066aafee8d5","study.naturalProduct.source_id":"","study.naturalProduct.conceptId":null,"study.naturalProduct.concept.conceptId":null,"study.naturalProduct.concept.conceptName":null,"study.naturalProduct.concept.domainId":null,"study.naturalProduct.concept.vocabularyId":null,"study.naturalProduct.concept.conceptClassId":null,"study.naturalProduct.concept.standardConcept":null,"study.naturalProduct.concept.conceptCode":null,"study.naturalProduct.concept.validStartDate":null,"study.naturalProduct.concept.validEndDate":null,"study.naturalProduct.concept.invalid_reason":null,"study.compound.id":null,"study.compound.name":null,"study.compound.unii":null,"study.compound.inChIKey":null,"study.compound.publicDescription":null,"study.compound.internalComment":null,"study.compound.conceptId":null,"study.compound.enantiomerOfId":null,"study.studySourceType.id":1,"study.studySourceType.name":"Published 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Interaction","experimentType.isInVitro":false,"experimentType.isTransporter":false,"experimentType.isEnzyme":false,"experimentType.purl":"http://purl.obolibrary.org/obo/DIDEO_00000071","objectCompound.id":26,"objectCompound.name":"midazolam","objectCompound.unii":"R60L0SM5BC","objectCompound.inChIKey":"DDLIGBOFAVUZHB-UHFFFAOYSA-N","objectCompound.publicDescription":null,"objectCompound.internalComment":null,"objectCompound.conceptId":708298,"objectCompound.enantiomerOfId":null,"objectCompound.concept.conceptId":708298,"objectCompound.concept.conceptName":"Midazolam","objectCompound.concept.domainId":"Drug","objectCompound.concept.vocabularyId":"RxNorm","objectCompound.concept.conceptClassId":"Ingredient","objectCompound.concept.standardConcept":"S","objectCompound.concept.conceptCode":"6960","objectCompound.concept.validStartDate":"1970-01-01T00:00:00.000Z","objectCompound.concept.validEndDate":"2099-12-31T00:00:00.000Z","objectCompound.concept.invalid_reason":null,"precipitantCompound.id":127,"precipitantCompound.name":"goldenseal 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis 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factors","experimentAnswers.question.required":false,"experimentAnswers.question.maxAnswers":100,"experimentAnswers.question.type":null,"experimentAnswers.question.conceptId":null,"experimentAnswers.question.answers.id":303,"experimentAnswers.question.answers.text":"Healthy alcohol drinking","experimentAnswers.question.answers.sortOrder":null,"experimentAnswers.question.answers.conceptId":null,"experimentAnswers.question.answers.questionId":102,"experimentAnswers.answer.id":300,"experimentAnswers.answer.text":"Nonsmokers","experimentAnswers.answer.sortOrder":null,"experimentAnswers.answer.conceptId":null,"experimentAnswers.answer.questionId":102},{"id":297,"uid":"NPDI-Bi2fGw","name":"CYP3A4 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Interaction","experimentType.isInVitro":false,"experimentType.isTransporter":false,"experimentType.isEnzyme":false,"experimentType.purl":"http://purl.obolibrary.org/obo/DIDEO_00000071","objectCompound.id":26,"objectCompound.name":"midazolam","objectCompound.unii":"R60L0SM5BC","objectCompound.inChIKey":"DDLIGBOFAVUZHB-UHFFFAOYSA-N","objectCompound.publicDescription":null,"objectCompound.internalComment":null,"objectCompound.conceptId":708298,"objectCompound.enantiomerOfId":null,"objectCompound.concept.conceptId":708298,"objectCompound.concept.conceptName":"Midazolam","objectCompound.concept.domainId":"Drug","objectCompound.concept.vocabularyId":"RxNorm","objectCompound.concept.conceptClassId":"Ingredient","objectCompound.concept.standardConcept":"S","objectCompound.concept.conceptCode":"6960","objectCompound.concept.validStartDate":"1970-01-01T00:00:00.000Z","objectCompound.concept.validEndDate":"2099-12-31T00:00:00.000Z","objectCompound.concept.invalid_reason":null,"precipitantCompound.id":127,"precipitantCompound.name":"goldenseal root 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis canadensis","study.naturalProduct.name":"Goldenseal","study.naturalProduct.itis":null,"study.naturalProduct.srs":"66690655-f406-4d67-96e3-2066aafee8d5","study.naturalProduct.source_id":"","study.naturalProduct.conceptId":null,"study.naturalProduct.concept.conceptId":null,"study.naturalProduct.concept.conceptName":null,"study.naturalProduct.concept.domainId":null,"study.naturalProduct.concept.vocabularyId":null,"study.naturalProduct.concept.conceptClassId":null,"study.naturalProduct.concept.standardConcept":null,"study.naturalProduct.concept.conceptCode":null,"study.naturalProduct.concept.validStartDate":null,"study.naturalProduct.concept.validEndDate":null,"study.naturalProduct.concept.invalid_reason":null,"study.compound.id":null,"study.compound.name":null,"study.compound.unii":null,"study.compound.inChIKey":null,"study.compound.publicDescription":null,"study.compound.internalComment":null,"study.compound.conceptId":null,"study.compound.enantiomerOfId":null,"study.studySourceType.id":1,"study.studySourceType.name":"Published report","testSystem.id":null,"testSystem.name":null,"testSystem.sortOrder":null,"testSystem.conceptId":null,"testSystem.categoryId":null,"testSystem.category.id":null,"testSystem.category.name":null,"testSystem.category.sortOrder":null,"testSystem.category.requiresCytochromeB5":null,"cytochromeB5.id":null,"cytochromeB5.name":null,"cytochromeB5.sortOrder":null,"cytochromeB5.conceptId":null,"controlDataExperiment.id":null,"controlDataExperiment.uid":null,"controlDataExperiment.name":null,"controlDataExperiment.overallEffect":null,"controlDataExperiment.isControlData":null,"controlDataExperiment.isIc50Shift":null,"controlDataExperiment.croCutoff":null,"controlDataExperiment.croIdentifier":null,"controlDataExperiment.comment":null,"controlDataExperiment.experimentalConditionsComment":null,"controlDataExperiment.resultsComment":null,"controlDataExperiment.internalComment":null,"controlDataExperiment.objectCompoundId":null,"controlDataExperiment.objectMetaboliteCompoundId":null,"controlDataExperiment.precipitantCompoundId":null,"controlDataExperiment.cytochromeB5Id":null,"controlDataExperiment.studyId":null,"controlDataExperiment.experimentTypeId":null,"controlDataExperiment.testSystemId":null,"controlDataExperiment.ic50ShiftExperimentId":null,"controlDataExperiment.controlDataExperimentId":null,"controlDataExperiment.controlDataForExperimentId":null,"controlDataExperiment.naturalProductSampleId":null,"controlDataExperiment.experimentType.id":null,"controlDataExperiment.experimentType.name":null,"controlDataExperiment.experimentType.isInVitro":null,"controlDataExperiment.experimentType.isTransporter":null,"controlDataExperiment.experimentType.isEnzyme":null,"controlDataExperiment.experimentType.purl":null,"controlDataExperiment.objectCompound.id":null,"controlDataExperiment.objectCompound.name":null,"controlDataExperiment.objectCompound.unii":null,"controlDataExperiment.objectCompound.inChIKey":null,"controlDataExperiment.objectCompound.publicDescription":null,"controlDataExperiment.objectCompound.internalComment":null,"controlDataExperiment.objectCompound.conceptId":null,"controlDataExperiment.objectCompound.enantiomerOfId":null,"controlDataExperiment.precipitantCompound.id":null,"controlDataExperiment.precipitantCompound.name":null,"controlDataExperiment.precipitantCompound.unii":null,"controlDataExperiment.precipitantCompound.inChIKey":null,"controlDataExperiment.precipitantCompound.publicDescription":null,"controlDataExperiment.precipitantCompound.internalComment":null,"controlDataExperiment.precipitantCompound.conceptId":null,"controlDataExperiment.precipitantCompound.enantiomerOfId":null,"controlDataExperiment.objectMetaboliteCompound.id":null,"controlDataExperiment.objectMetaboliteCompound.name":null,"controlDataExperiment.objectMetaboliteCompound.unii":null,"controlDataExperiment.objectMetaboliteCompound.inChIKey":null,"controlDataExperiment.objectMetaboliteCompound.publicDescriptio":null,"controlDataExperiment.objectMetaboliteCompound.internalComment":null,"controlDataExperiment.objectMetaboliteCompound.conceptId":null,"controlDataExperiment.objectMetaboliteCompound.enantiomerOfId":null,"controlDataExperiment.enzymes.id":null,"controlDataExperiment.enzymes.name":null,"controlDataExperiment.enzymes.conceptId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.enzymeId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.experiment":null,"controlDataExperiment.transporters.id":null,"controlDataExperiment.transporters.name":null,"controlDataExperiment.transporters.conceptId":null,"controlDataExperiment.transporters.experiment_transporter_xref.":null,"controlDataExperiment.quantifiedMetabolites.id":null,"controlDataExperiment.quantifiedMetabolites.name":null,"controlDataExperiment.quantifiedMetabolites.unii":null,"controlDataExperiment.quantifiedMetabolites.inChIKey":null,"controlDataExperiment.quantifiedMetabolites.publicDescription":null,"controlDataExperiment.quantifiedMetabolites.internalComment":null,"controlDataExperiment.quantifiedMetabolites.conceptId":null,"controlDataExperiment.quantifiedMetabolites.enantiomerOfId":null,"controlDataExperiment.quantifiedMetabolites.experiment_quantifi":null,"experimentAnswers.id":7007,"experimentAnswers.text":null,"experimentAnswers.answerId":300,"experimentAnswers.experimentId":297,"experimentAnswers.questionId":102,"experimentAnswers.question.id":102,"experimentAnswers.question.text":"Lifestyle 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Interaction","experimentType.isInVitro":false,"experimentType.isTransporter":false,"experimentType.isEnzyme":false,"experimentType.purl":"http://purl.obolibrary.org/obo/DIDEO_00000071","objectCompound.id":26,"objectCompound.name":"midazolam","objectCompound.unii":"R60L0SM5BC","objectCompound.inChIKey":"DDLIGBOFAVUZHB-UHFFFAOYSA-N","objectCompound.publicDescription":null,"objectCompound.internalComment":null,"objectCompound.conceptId":708298,"objectCompound.enantiomerOfId":null,"objectCompound.concept.conceptId":708298,"objectCompound.concept.conceptName":"Midazolam","objectCompound.concept.domainId":"Drug","objectCompound.concept.vocabularyId":"RxNorm","objectCompound.concept.conceptClassId":"Ingredient","objectCompound.concept.standardConcept":"S","objectCompound.concept.conceptCode":"6960","objectCompound.concept.validStartDate":"1970-01-01T00:00:00.000Z","objectCompound.concept.validEndDate":"2099-12-31T00:00:00.000Z","objectCompound.concept.invalid_reason":null,"precipitantCompound.id":127,"precipitantCompound.name":"goldenseal 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis canadensis","study.naturalProduct.name":"Goldenseal","study.naturalProduct.itis":null,"study.naturalProduct.srs":"66690655-f406-4d67-96e3-2066aafee8d5","study.naturalProduct.source_id":"","study.naturalProduct.conceptId":null,"study.naturalProduct.concept.conceptId":null,"study.naturalProduct.concept.conceptName":null,"study.naturalProduct.concept.domainId":null,"study.naturalProduct.concept.vocabularyId":null,"study.naturalProduct.concept.conceptClassId":null,"study.naturalProduct.concept.standardConcept":null,"study.naturalProduct.concept.conceptCode":null,"study.naturalProduct.concept.validStartDate":null,"study.naturalProduct.concept.validEndDate":null,"study.naturalProduct.concept.invalid_reason":null,"study.compound.id":null,"study.compound.name":null,"study.compound.unii":null,"study.compound.inChIKey":null,"study.compound.publicDescription":null,"study.compound.internalComment":null,"study.compound.conceptId":null,"study.compound.enantiomerOfId":null,"study.studySourceType.id":1,"study.studySourceType.name":"Published report","testSystem.id":null,"testSystem.name":null,"testSystem.sortOrder":null,"testSystem.conceptId":null,"testSystem.categoryId":null,"testSystem.category.id":null,"testSystem.category.name":null,"testSystem.category.sortOrder":null,"testSystem.category.requiresCytochromeB5":null,"cytochromeB5.id":null,"cytochromeB5.name":null,"cytochromeB5.sortOrder":null,"cytochromeB5.conceptId":null,"controlDataExperiment.id":null,"controlDataExperiment.uid":null,"controlDataExperiment.name":null,"controlDataExperiment.overallEffect":null,"controlDataExperiment.isControlData":null,"controlDataExperiment.isIc50Shift":null,"controlDataExperiment.croCutoff":null,"controlDataExperiment.croIdentifier":null,"controlDataExperiment.comment":null,"controlDataExperiment.experimentalConditionsComment":null,"controlDataExperiment.resultsComment":null,"controlDataExperiment.internalComment":null,"controlDataExperiment.objectCompoundId":null,"controlDataExperiment.objectMetaboliteCompoundId":null,"controlDataExperiment.precipitantCompoundId":null,"controlDataExperiment.cytochromeB5Id":null,"controlDataExperiment.studyId":null,"controlDataExperiment.experimentTypeId":null,"controlDataExperiment.testSystemId":null,"controlDataExperiment.ic50ShiftExperimentId":null,"controlDataExperiment.controlDataExperimentId":null,"controlDataExperiment.controlDataForExperimentId":null,"controlDataExperiment.naturalProductSampleId":null,"controlDataExperiment.experimentType.id":null,"controlDataExperiment.experimentType.name":null,"controlDataExperiment.experimentType.isInVitro":null,"controlDataExperiment.experimentType.isTransporter":null,"controlDataExperiment.experimentType.isEnzyme":null,"controlDataExperiment.experimentType.purl":null,"controlDataExperiment.objectCompound.id":null,"controlDataExperiment.objectCompound.name":null,"controlDataExperiment.objectCompound.unii":null,"controlDataExperiment.objectCompound.inChIKey":null,"controlDataExperiment.objectCompound.publicDescription":null,"controlDataExperiment.objectCompound.internalComment":null,"controlDataExperiment.objectCompound.conceptId":null,"controlDataExperiment.objectCompound.enantiomerOfId":null,"controlDataExperiment.precipitantCompound.id":null,"controlDataExperiment.precipitantCompound.name":null,"controlDataExperiment.precipitantCompound.unii":null,"controlDataExperiment.precipitantCompound.inChIKey":null,"controlDataExperiment.precipitantCompound.publicDescription":null,"controlDataExperiment.precipitantCompound.internalComment":null,"controlDataExperiment.precipitantCompound.conceptId":null,"controlDataExperiment.precipitantCompound.enantiomerOfId":null,"controlDataExperiment.objectMetaboliteCompound.id":null,"controlDataExperiment.objectMetaboliteCompound.name":null,"controlDataExperiment.objectMetaboliteCompound.unii":null,"controlDataExperiment.objectMetaboliteCompound.inChIKey":null,"controlDataExperiment.objectMetaboliteCompound.publicDescriptio":null,"controlDataExperiment.objectMetaboliteCompound.internalComment":null,"controlDataExperiment.objectMetaboliteCompound.conceptId":null,"controlDataExperiment.objectMetaboliteCompound.enantiomerOfId":null,"controlDataExperiment.enzymes.id":null,"controlDataExperiment.enzymes.name":null,"controlDataExperiment.enzymes.conceptId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.enzymeId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.experiment":null,"controlDataExperiment.transporters.id":null,"controlDataExperiment.transporters.name":null,"controlDataExperiment.transporters.conceptId":null,"controlDataExperiment.transporters.experiment_transporter_xref.":null,"controlDataExperiment.quantifiedMetabolites.id":null,"controlDataExperiment.quantifiedMetabolites.name":null,"controlDataExperiment.quantifiedMetabolites.unii":null,"controlDataExperiment.quantifiedMetabolites.inChIKey":null,"controlDataExperiment.quantifiedMetabolites.publicDescription":null,"controlDataExperiment.quantifiedMetabolites.internalComment":null,"controlDataExperiment.quantifiedMetabolites.conceptId":null,"controlDataExperiment.quantifiedMetabolites.enantiomerOfId":null,"controlDataExperiment.quantifiedMetabolites.experiment_quantifi":null,"experimentAnswers.id":7007,"experimentAnswers.text":null,"experimentAnswers.answerId":300,"experimentAnswers.experimentId":297,"experimentAnswers.questionId":102,"experimentAnswers.question.id":102,"experimentAnswers.question.text":"Lifestyle factors","experimentAnswers.question.required":false,"experimentAnswers.question.maxAnswers":100,"experimentAnswers.question.type":null,"experimentAnswers.question.conceptId":null,"experimentAnswers.question.answers.id":305,"experimentAnswers.question.answers.text":"No marijuana use","experimentAnswers.question.answers.sortOrder":null,"experimentAnswers.question.answers.conceptId":null,"experimentAnswers.question.answers.questionId":102,"experimentAnswers.answer.id":300,"experimentAnswers.answer.text":"Nonsmokers","experimentAnswers.answer.sortOrder":null,"experimentAnswers.answer.conceptId":null,"experimentAnswers.answer.questionId":102},{"id":297,"uid":"NPDI-Bi2fGw","name":"CYP3A4 Experiment","overallEffect":1,"isControlData":false,"isIc50Shift":false,"croCutoff":null,"croIdentifier":null,"comment":null,"experimentalConditionsComment":null,"resultsComment":null,"internalComment":null,"objectCompoundId":26,"objectMetaboliteCompoundId":null,"precipitantCompoundId":127,"cytochromeB5Id":null,"studyId":73,"experimentTypeId":9,"testSystemId":null,"ic50ShiftExperimentId":null,"controlDataExperimentId":null,"controlDataForExperimentId":null,"naturalProductSampleId":null,"experimentType.id":9,"experimentType.name":"In Vivo Interaction","experimentType.isInVitro":false,"experimentType.isTransporter":false,"experimentType.isEnzyme":false,"experimentType.purl":"http://purl.obolibrary.org/obo/DIDEO_00000071","objectCompound.id":26,"objectCompound.name":"midazolam","objectCompound.unii":"R60L0SM5BC","objectCompound.inChIKey":"DDLIGBOFAVUZHB-UHFFFAOYSA-N","objectCompound.publicDescription":null,"objectCompound.internalComment":null,"objectCompound.conceptId":708298,"objectCompound.enantiomerOfId":null,"objectCompound.concept.conceptId":708298,"objectCompound.concept.conceptName":"Midazolam","objectCompound.concept.domainId":"Drug","objectCompound.concept.vocabularyId":"RxNorm","objectCompound.concept.conceptClassId":"Ingredient","objectCompound.concept.standardConcept":"S","objectCompound.concept.conceptCode":"6960","objectCompound.concept.validStartDate":"1970-01-01T00:00:00.000Z","objectCompound.concept.validEndDate":"2099-12-31T00:00:00.000Z","objectCompound.concept.invalid_reason":null,"precipitantCompound.id":127,"precipitantCompound.name":"goldenseal root extract","precipitantCompound.unii":null,"precipitantCompound.inChIKey":null,"precipitantCompound.publicDescription":null,"precipitantCompound.internalComment":null,"precipitantCompound.conceptId":null,"precipitantCompound.enantiomerOfId":null,"precipitantCompound.concept.conceptId":null,"precipitantCompound.concept.conceptName":null,"precipitantCompound.concept.domainId":null,"precipitantCompound.concept.vocabularyId":null,"precipitantCompound.concept.conceptClassId":null,"precipitantCompound.concept.standardConcept":null,"precipitantCompound.concept.conceptCode":null,"precipitantCompound.concept.validStartDate":null,"precipitantCompound.concept.validEndDate":null,"precipitantCompound.concept.invalid_reason":null,"objectMetaboliteCompound.id":null,"objectMetaboliteCompound.name":null,"objectMetaboliteCompound.unii":null,"objectMetaboliteCompound.inChIKey":null,"objectMetaboliteCompound.publicDescription":null,"objectMetaboliteCompound.internalComment":null,"objectMetaboliteCompound.conceptId":null,"objectMetaboliteCompound.enantiomerOfId":null,"objectMetaboliteCompound.concept.conceptId":null,"objectMetaboliteCompound.concept.conceptName":null,"objectMetaboliteCompound.concept.domainId":null,"objectMetaboliteCompound.concept.vocabularyId":null,"objectMetaboliteCompound.concept.conceptClassId":null,"objectMetaboliteCompound.concept.standardConcept":null,"objectMetaboliteCompound.concept.conceptCode":null,"objectMetaboliteCompound.concept.validStartDate":null,"objectMetaboliteCompound.concept.validEndDate":null,"objectMetaboliteCompound.concept.invalid_reason":null,"enzymes.id":13,"enzymes.name":"CYP3A4","enzymes.conceptId":4306811,"enzymes.experiment_enzyme_xref.enzymeId":13,"enzymes.experiment_enzyme_xref.experimentId":297,"transporters.id":null,"transporters.name":null,"transporters.conceptId":null,"transporters.experiment_transporter_xref.experimentId":null,"transporters.experiment_transporter_xref.transporterId":null,"quantifiedMetabolites.id":null,"quantifiedMetabolites.name":null,"quantifiedMetabolites.unii":null,"quantifiedMetabolites.inChIKey":null,"quantifiedMetabolites.publicDescription":null,"quantifiedMetabolites.internalComment":null,"quantifiedMetabolites.conceptId":null,"quantifiedMetabolites.enantiomerOfId":null,"quantifiedMetabolites.experiment_quantified_metabolite_xref.com":null,"quantifiedMetabolites.experiment_quantified_metabolite_xref.exp":null,"study.id":73,"study.uid":"NPDI-ftEv0g","study.name":"In vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis canadensis","study.naturalProduct.name":"Goldenseal","study.naturalProduct.itis":null,"study.naturalProduct.srs":"66690655-f406-4d67-96e3-2066aafee8d5","study.naturalProduct.source_id":"","study.naturalProduct.conceptId":null,"study.naturalProduct.concept.conceptId":null,"study.naturalProduct.concept.conceptName":null,"study.naturalProduct.concept.domainId":null,"study.naturalProduct.concept.vocabularyId":null,"study.naturalProduct.concept.conceptClassId":null,"study.naturalProduct.concept.standardConcept":null,"study.naturalProduct.concept.conceptCode":null,"study.naturalProduct.concept.validStartDate":null,"study.naturalProduct.concept.validEndDate":null,"study.naturalProduct.concept.invalid_reason":null,"study.compound.id":null,"study.compound.name":null,"study.compound.unii":null,"study.compound.inChIKey":null,"study.compound.publicDescription":null,"study.compound.internalComment":null,"study.compound.conceptId":null,"study.compound.enantiomerOfId":null,"study.studySourceType.id":1,"study.studySourceType.name":"Published report","testSystem.id":null,"testSystem.name":null,"testSystem.sortOrder":null,"testSystem.conceptId":null,"testSystem.categoryId":null,"testSystem.category.id":null,"testSystem.category.name":null,"testSystem.category.sortOrder":null,"testSystem.category.requiresCytochromeB5":null,"cytochromeB5.id":null,"cytochromeB5.name":null,"cytochromeB5.sortOrder":null,"cytochromeB5.conceptId":null,"controlDataExperiment.id":null,"controlDataExperiment.uid":null,"controlDataExperiment.name":null,"controlDataExperiment.overallEffect":null,"controlDataExperiment.isControlData":null,"controlDataExperiment.isIc50Shift":null,"controlDataExperiment.croCutoff":null,"controlDataExperiment.croIdentifier":null,"controlDataExperiment.comment":null,"controlDataExperiment.experimentalConditionsComment":null,"controlDataExperiment.resultsComment":null,"controlDataExperiment.internalComment":null,"controlDataExperiment.objectCompoundId":null,"controlDataExperiment.objectMetaboliteCompoundId":null,"controlDataExperiment.precipitantCompoundId":null,"controlDataExperiment.cytochromeB5Id":null,"controlDataExperiment.studyId":null,"controlDataExperiment.experimentTypeId":null,"controlDataExperiment.testSystemId":null,"controlDataExperiment.ic50ShiftExperimentId":null,"controlDataExperiment.controlDataExperimentId":null,"controlDataExperiment.controlDataForExperimentId":null,"controlDataExperiment.naturalProductSampleId":null,"controlDataExperiment.experimentType.id":null,"controlDataExperiment.experimentType.name":null,"controlDataExperiment.experimentType.isInVitro":null,"controlDataExperiment.experimentType.isTransporter":null,"controlDataExperiment.experimentType.isEnzyme":null,"controlDataExperiment.experimentType.purl":null,"controlDataExperiment.objectCompound.id":null,"controlDataExperiment.objectCompound.name":null,"controlDataExperiment.objectCompound.unii":null,"controlDataExperiment.objectCompound.inChIKey":null,"controlDataExperiment.objectCompound.publicDescription":null,"controlDataExperiment.objectCompound.internalComment":null,"controlDataExperiment.objectCompound.conceptId":null,"controlDataExperiment.objectCompound.enantiomerOfId":null,"controlDataExperiment.precipitantCompound.id":null,"controlDataExperiment.precipitantCompound.name":null,"controlDataExperiment.precipitantCompound.unii":null,"controlDataExperiment.precipitantCompound.inChIKey":null,"controlDataExperiment.precipitantCompound.publicDescription":null,"controlDataExperiment.precipitantCompound.internalComment":null,"controlDataExperiment.precipitantCompound.conceptId":null,"controlDataExperiment.precipitantCompound.enantiomerOfId":null,"controlDataExperiment.objectMetaboliteCompound.id":null,"controlDataExperiment.objectMetaboliteCompound.name":null,"controlDataExperiment.objectMetaboliteCompound.unii":null,"controlDataExperiment.objectMetaboliteCompound.inChIKey":null,"controlDataExperiment.objectMetaboliteCompound.publicDescriptio":null,"controlDataExperiment.objectMetaboliteCompound.internalComment":null,"controlDataExperiment.objectMetaboliteCompound.conceptId":null,"controlDataExperiment.objectMetaboliteCompound.enantiomerOfId":null,"controlDataExperiment.enzymes.id":null,"controlDataExperiment.enzymes.name":null,"controlDataExperiment.enzymes.conceptId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.enzymeId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.experiment":null,"controlDataExperiment.transporters.id":null,"controlDataExperiment.transporters.name":null,"controlDataExperiment.transporters.conceptId":null,"controlDataExperiment.transporters.experiment_transporter_xref.":null,"controlDataExperiment.quantifiedMetabolites.id":null,"controlDataExperiment.quantifiedMetabolites.name":null,"controlDataExperiment.quantifiedMetabolites.unii":null,"controlDataExperiment.quantifiedMetabolites.inChIKey":null,"controlDataExperiment.quantifiedMetabolites.publicDescription":null,"controlDataExperiment.quantifiedMetabolites.internalComment":null,"controlDataExperiment.quantifiedMetabolites.conceptId":null,"controlDataExperiment.quantifiedMetabolites.enantiomerOfId":null,"controlDataExperiment.quantifiedMetabolites.experiment_quantifi":null,"experimentAnswers.id":7007,"experimentAnswers.text":null,"experimentAnswers.answerId":300,"experimentAnswers.experimentId":297,"experimentAnswers.questionId":102,"experimentAnswers.question.id":102,"experimentAnswers.question.text":"Lifestyle factors","experimentAnswers.question.required":false,"experimentAnswers.question.maxAnswers":100,"experimentAnswers.question.type":null,"experimentAnswers.question.conceptId":null,"experimentAnswers.question.answers.id":306,"experimentAnswers.question.answers.text":"Occasional marijuana use","experimentAnswers.question.answers.sortOrder":null,"experimentAnswers.question.answers.conceptId":null,"experimentAnswers.question.answers.questionId":102,"experimentAnswers.answer.id":300,"experimentAnswers.answer.text":"Nonsmokers","experimentAnswers.answer.sortOrder":null,"experimentAnswers.answer.conceptId":null,"experimentAnswers.answer.questionId":102},{"id":297,"uid":"NPDI-Bi2fGw","name":"CYP3A4 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Interaction","experimentType.isInVitro":false,"experimentType.isTransporter":false,"experimentType.isEnzyme":false,"experimentType.purl":"http://purl.obolibrary.org/obo/DIDEO_00000071","objectCompound.id":26,"objectCompound.name":"midazolam","objectCompound.unii":"R60L0SM5BC","objectCompound.inChIKey":"DDLIGBOFAVUZHB-UHFFFAOYSA-N","objectCompound.publicDescription":null,"objectCompound.internalComment":null,"objectCompound.conceptId":708298,"objectCompound.enantiomerOfId":null,"objectCompound.concept.conceptId":708298,"objectCompound.concept.conceptName":"Midazolam","objectCompound.concept.domainId":"Drug","objectCompound.concept.vocabularyId":"RxNorm","objectCompound.concept.conceptClassId":"Ingredient","objectCompound.concept.standardConcept":"S","objectCompound.concept.conceptCode":"6960","objectCompound.concept.validStartDate":"1970-01-01T00:00:00.000Z","objectCompound.concept.validEndDate":"2099-12-31T00:00:00.000Z","objectCompound.concept.invalid_reason":null,"precipitantCompound.id":127,"precipitantCompound.name":"goldenseal 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extract","precipitantCompound.unii":null,"precipitantCompound.inChIKey":null,"precipitantCompound.publicDescription":null,"precipitantCompound.internalComment":null,"precipitantCompound.conceptId":null,"precipitantCompound.enantiomerOfId":null,"precipitantCompound.concept.conceptId":null,"precipitantCompound.concept.conceptName":null,"precipitantCompound.concept.domainId":null,"precipitantCompound.concept.vocabularyId":null,"precipitantCompound.concept.conceptClassId":null,"precipitantCompound.concept.standardConcept":null,"precipitantCompound.concept.conceptCode":null,"precipitantCompound.concept.validStartDate":null,"precipitantCompound.concept.validEndDate":null,"precipitantCompound.concept.invalid_reason":null,"objectMetaboliteCompound.id":null,"objectMetaboliteCompound.name":null,"objectMetaboliteCompound.unii":null,"objectMetaboliteCompound.inChIKey":null,"objectMetaboliteCompound.publicDescription":null,"objectMetaboliteCompound.internalComment":null,"objectMetaboliteCompound.conceptId":null,"objectMetaboliteCompound.enantiomerOfId":null,"objectMetaboliteCompound.concept.conceptId":null,"objectMetaboliteCompound.concept.conceptName":null,"objectMetaboliteCompound.concept.domainId":null,"objectMetaboliteCompound.concept.vocabularyId":null,"objectMetaboliteCompound.concept.conceptClassId":null,"objectMetaboliteCompound.concept.standardConcept":null,"objectMetaboliteCompound.concept.conceptCode":null,"objectMetaboliteCompound.concept.validStartDate":null,"objectMetaboliteCompound.concept.validEndDate":null,"objectMetaboliteCompound.concept.invalid_reason":null,"enzymes.id":13,"enzymes.name":"CYP3A4","enzymes.conceptId":4306811,"enzymes.experiment_enzyme_xref.enzymeId":13,"enzymes.experiment_enzyme_xref.experimentId":297,"transporters.id":null,"transporters.name":null,"transporters.conceptId":null,"transporters.experiment_transporter_xref.experimentId":null,"transporters.experiment_transporter_xref.transporterId":null,"quantifiedMetabolites.id":null,"quantifiedMetabolites.name":null,"quantifiedMetabolites.unii":null,"quantifiedMetabolites.inChIKey":null,"quantifiedMetabolites.publicDescription":null,"quantifiedMetabolites.internalComment":null,"quantifiedMetabolites.conceptId":null,"quantifiedMetabolites.enantiomerOfId":null,"quantifiedMetabolites.experiment_quantified_metabolite_xref.com":null,"quantifiedMetabolites.experiment_quantified_metabolite_xref.exp":null,"study.id":73,"study.uid":"NPDI-ftEv0g","study.name":"In vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis canadensis","study.naturalProduct.name":"Goldenseal","study.naturalProduct.itis":null,"study.naturalProduct.srs":"66690655-f406-4d67-96e3-2066aafee8d5","study.naturalProduct.source_id":"","study.naturalProduct.conceptId":null,"study.naturalProduct.concept.conceptId":null,"study.naturalProduct.concept.conceptName":null,"study.naturalProduct.concept.domainId":null,"study.naturalProduct.concept.vocabularyId":null,"study.naturalProduct.concept.conceptClassId":null,"study.naturalProduct.concept.standardConcept":null,"study.naturalProduct.concept.conceptCode":null,"study.naturalProduct.concept.validStartDate":null,"study.naturalProduct.concept.validEndDate":null,"study.naturalProduct.concept.invalid_reason":null,"study.compound.id":null,"study.compound.name":null,"study.compound.unii":null,"study.compound.inChIKey":null,"study.compound.publicDescription":null,"study.compound.internalComment":null,"study.compound.conceptId":null,"study.compound.enantiomerOfId":null,"study.studySourceType.id":1,"study.studySourceType.name":"Published report","testSystem.id":null,"testSystem.name":null,"testSystem.sortOrder":null,"testSystem.conceptId":null,"testSystem.categoryId":null,"testSystem.category.id":null,"testSystem.category.name":null,"testSystem.category.sortOrder":null,"testSystem.category.requiresCytochromeB5":null,"cytochromeB5.id":null,"cytochromeB5.name":null,"cytochromeB5.sortOrder":null,"cytochromeB5.conceptId":null,"controlDataExperiment.id":null,"controlDataExperiment.uid":null,"controlDataExperiment.name":null,"controlDataExperiment.overallEffect":null,"controlDataExperiment.isControlData":null,"controlDataExperiment.isIc50Shift":null,"controlDataExperiment.croCutoff":null,"controlDataExperiment.croIdentifier":null,"controlDataExperiment.comment":null,"controlDataExperiment.experimentalConditionsComment":null,"controlDataExperiment.resultsComment":null,"controlDataExperiment.internalComment":null,"controlDataExperiment.objectCompoundId":null,"controlDataExperiment.objectMetaboliteCompoundId":null,"controlDataExperiment.precipitantCompoundId":null,"controlDataExperiment.cytochromeB5Id":null,"controlDataExperiment.studyId":null,"controlDataExperiment.experimentTypeId":null,"controlDataExperiment.testSystemId":null,"controlDataExperiment.ic50ShiftExperimentId":null,"controlDataExperiment.controlDataExperimentId":null,"controlDataExperiment.controlDataForExperimentId":null,"controlDataExperiment.naturalProductSampleId":null,"controlDataExperiment.experimentType.id":null,"controlDataExperiment.experimentType.name":null,"controlDataExperiment.experimentType.isInVitro":null,"controlDataExperiment.experimentType.isTransporter":null,"controlDataExperiment.experimentType.isEnzyme":null,"controlDataExperiment.experimentType.purl":null,"controlDataExperiment.objectCompound.id":null,"controlDataExperiment.objectCompound.name":null,"controlDataExperiment.objectCompound.unii":null,"controlDataExperiment.objectCompound.inChIKey":null,"controlDataExperiment.objectCompound.publicDescription":null,"controlDataExperiment.objectCompound.internalComment":null,"controlDataExperiment.objectCompound.conceptId":null,"controlDataExperiment.objectCompound.enantiomerOfId":null,"controlDataExperiment.precipitantCompound.id":null,"controlDataExperiment.precipitantCompound.name":null,"controlDataExperiment.precipitantCompound.unii":null,"controlDataExperiment.precipitantCompound.inChIKey":null,"controlDataExperiment.precipitantCompound.publicDescription":null,"controlDataExperiment.precipitantCompound.internalComment":null,"controlDataExperiment.precipitantCompound.conceptId":null,"controlDataExperiment.precipitantCompound.enantiomerOfId":null,"controlDataExperiment.objectMetaboliteCompound.id":null,"controlDataExperiment.objectMetaboliteCompound.name":null,"controlDataExperiment.objectMetaboliteCompound.unii":null,"controlDataExperiment.objectMetaboliteCompound.inChIKey":null,"controlDataExperiment.objectMetaboliteCompound.publicDescriptio":null,"controlDataExperiment.objectMetaboliteCompound.internalComment":null,"controlDataExperiment.objectMetaboliteCompound.conceptId":null,"controlDataExperiment.objectMetaboliteCompound.enantiomerOfId":null,"controlDataExperiment.enzymes.id":null,"controlDataExperiment.enzymes.name":null,"controlDataExperiment.enzymes.conceptId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.enzymeId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.experiment":null,"controlDataExperiment.transporters.id":null,"controlDataExperiment.transporters.name":null,"controlDataExperiment.transporters.conceptId":null,"controlDataExperiment.transporters.experiment_transporter_xref.":null,"controlDataExperiment.quantifiedMetabolites.id":null,"controlDataExperiment.quantifiedMetabolites.name":null,"controlDataExperiment.quantifiedMetabolites.unii":null,"controlDataExperiment.quantifiedMetabolites.inChIKey":null,"controlDataExperiment.quantifiedMetabolites.publicDescription":null,"controlDataExperiment.quantifiedMetabolites.internalComment":null,"controlDataExperiment.quantifiedMetabolites.conceptId":null,"controlDataExperiment.quantifiedMetabolites.enantiomerOfId":null,"controlDataExperiment.quantifiedMetabolites.experiment_quantifi":null,"experimentAnswers.id":7007,"experimentAnswers.text":null,"experimentAnswers.answerId":300,"experimentAnswers.experimentId":297,"experimentAnswers.questionId":102,"experimentAnswers.question.id":102,"experimentAnswers.question.text":"Lifestyle factors","experimentAnswers.question.required":false,"experimentAnswers.question.maxAnswers":100,"experimentAnswers.question.type":null,"experimentAnswers.question.conceptId":null,"experimentAnswers.question.answers.id":301,"experimentAnswers.question.answers.text":"Smokers","experimentAnswers.question.answers.sortOrder":null,"experimentAnswers.question.answers.conceptId":null,"experimentAnswers.question.answers.questionId":102,"experimentAnswers.answer.id":300,"experimentAnswers.answer.text":"Nonsmokers","experimentAnswers.answer.sortOrder":null,"experimentAnswers.answer.conceptId":null,"experimentAnswers.answer.questionId":102},{"id":297,"uid":"NPDI-Bi2fGw","name":"CYP3A4 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Interaction","experimentType.isInVitro":false,"experimentType.isTransporter":false,"experimentType.isEnzyme":false,"experimentType.purl":"http://purl.obolibrary.org/obo/DIDEO_00000071","objectCompound.id":26,"objectCompound.name":"midazolam","objectCompound.unii":"R60L0SM5BC","objectCompound.inChIKey":"DDLIGBOFAVUZHB-UHFFFAOYSA-N","objectCompound.publicDescription":null,"objectCompound.internalComment":null,"objectCompound.conceptId":708298,"objectCompound.enantiomerOfId":null,"objectCompound.concept.conceptId":708298,"objectCompound.concept.conceptName":"Midazolam","objectCompound.concept.domainId":"Drug","objectCompound.concept.vocabularyId":"RxNorm","objectCompound.concept.conceptClassId":"Ingredient","objectCompound.concept.standardConcept":"S","objectCompound.concept.conceptCode":"6960","objectCompound.concept.validStartDate":"1970-01-01T00:00:00.000Z","objectCompound.concept.validEndDate":"2099-12-31T00:00:00.000Z","objectCompound.concept.invalid_reason":null,"precipitantCompound.id":127,"precipitantCompound.name":"goldenseal 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extract","precipitantCompound.unii":null,"precipitantCompound.inChIKey":null,"precipitantCompound.publicDescription":null,"precipitantCompound.internalComment":null,"precipitantCompound.conceptId":null,"precipitantCompound.enantiomerOfId":null,"precipitantCompound.concept.conceptId":null,"precipitantCompound.concept.conceptName":null,"precipitantCompound.concept.domainId":null,"precipitantCompound.concept.vocabularyId":null,"precipitantCompound.concept.conceptClassId":null,"precipitantCompound.concept.standardConcept":null,"precipitantCompound.concept.conceptCode":null,"precipitantCompound.concept.validStartDate":null,"precipitantCompound.concept.validEndDate":null,"precipitantCompound.concept.invalid_reason":null,"objectMetaboliteCompound.id":null,"objectMetaboliteCompound.name":null,"objectMetaboliteCompound.unii":null,"objectMetaboliteCompound.inChIKey":null,"objectMetaboliteCompound.publicDescription":null,"objectMetaboliteCompound.internalComment":null,"objectMetaboliteCompound.conceptId":null,"objectMetaboliteCompound.enantiomerOfId":null,"objectMetaboliteCompound.concept.conceptId":null,"objectMetaboliteCompound.concept.conceptName":null,"objectMetaboliteCompound.concept.domainId":null,"objectMetaboliteCompound.concept.vocabularyId":null,"objectMetaboliteCompound.concept.conceptClassId":null,"objectMetaboliteCompound.concept.standardConcept":null,"objectMetaboliteCompound.concept.conceptCode":null,"objectMetaboliteCompound.concept.validStartDate":null,"objectMetaboliteCompound.concept.validEndDate":null,"objectMetaboliteCompound.concept.invalid_reason":null,"enzymes.id":13,"enzymes.name":"CYP3A4","enzymes.conceptId":4306811,"enzymes.experiment_enzyme_xref.enzymeId":13,"enzymes.experiment_enzyme_xref.experimentId":297,"transporters.id":null,"transporters.name":null,"transporters.conceptId":null,"transporters.experiment_transporter_xref.experimentId":null,"transporters.experiment_transporter_xref.transporterId":null,"quantifiedMetabolites.id":null,"quantifiedMetabolites.name":null,"quantifiedMetabolites.unii":null,"quantifiedMetabolites.inChIKey":null,"quantifiedMetabolites.publicDescription":null,"quantifiedMetabolites.internalComment":null,"quantifiedMetabolites.conceptId":null,"quantifiedMetabolites.enantiomerOfId":null,"quantifiedMetabolites.experiment_quantified_metabolite_xref.com":null,"quantifiedMetabolites.experiment_quantified_metabolite_xref.exp":null,"study.id":73,"study.uid":"NPDI-ftEv0g","study.name":"In vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis canadensis","study.naturalProduct.name":"Goldenseal","study.naturalProduct.itis":null,"study.naturalProduct.srs":"66690655-f406-4d67-96e3-2066aafee8d5","study.naturalProduct.source_id":"","study.naturalProduct.conceptId":null,"study.naturalProduct.concept.conceptId":null,"study.naturalProduct.concept.conceptName":null,"study.naturalProduct.concept.domainId":null,"study.naturalProduct.concept.vocabularyId":null,"study.naturalProduct.concept.conceptClassId":null,"study.naturalProduct.concept.standardConcept":null,"study.naturalProduct.concept.conceptCode":null,"study.naturalProduct.concept.validStartDate":null,"study.naturalProduct.concept.validEndDate":null,"study.naturalProduct.concept.invalid_reason":null,"study.compound.id":null,"study.compound.name":null,"study.compound.unii":null,"study.compound.inChIKey":null,"study.compound.publicDescription":null,"study.compound.internalComment":null,"study.compound.conceptId":null,"study.compound.enantiomerOfId":null,"study.studySourceType.id":1,"study.studySourceType.name":"Published report","testSystem.id":null,"testSystem.name":null,"testSystem.sortOrder":null,"testSystem.conceptId":null,"testSystem.categoryId":null,"testSystem.category.id":null,"testSystem.category.name":null,"testSystem.category.sortOrder":null,"testSystem.category.requiresCytochromeB5":null,"cytochromeB5.id":null,"cytochromeB5.name":null,"cytochromeB5.sortOrder":null,"cytochromeB5.conceptId":null,"controlDataExperiment.id":null,"controlDataExperiment.uid":null,"controlDataExperiment.name":null,"controlDataExperiment.overallEffect":null,"controlDataExperiment.isControlData":null,"controlDataExperiment.isIc50Shift":null,"controlDataExperiment.croCutoff":null,"controlDataExperiment.croIdentifier":null,"controlDataExperiment.comment":null,"controlDataExperiment.experimentalConditionsComment":null,"controlDataExperiment.resultsComment":null,"controlDataExperiment.internalComment":null,"controlDataExperiment.objectCompoundId":null,"controlDataExperiment.objectMetaboliteCompoundId":null,"controlDataExperiment.precipitantCompoundId":null,"controlDataExperiment.cytochromeB5Id":null,"controlDataExperiment.studyId":null,"controlDataExperiment.experimentTypeId":null,"controlDataExperiment.testSystemId":null,"controlDataExperiment.ic50ShiftExperimentId":null,"controlDataExperiment.controlDataExperimentId":null,"controlDataExperiment.controlDataForExperimentId":null,"controlDataExperiment.naturalProductSampleId":null,"controlDataExperiment.experimentType.id":null,"controlDataExperiment.experimentType.name":null,"controlDataExperiment.experimentType.isInVitro":null,"controlDataExperiment.experimentType.isTransporter":null,"controlDataExperiment.experimentType.isEnzyme":null,"controlDataExperiment.experimentType.purl":null,"controlDataExperiment.objectCompound.id":null,"controlDataExperiment.objectCompound.name":null,"controlDataExperiment.objectCompound.unii":null,"controlDataExperiment.objectCompound.inChIKey":null,"controlDataExperiment.objectCompound.publicDescription":null,"controlDataExperiment.objectCompound.internalComment":null,"controlDataExperiment.objectCompound.conceptId":null,"controlDataExperiment.objectCompound.enantiomerOfId":null,"controlDataExperiment.precipitantCompound.id":null,"controlDataExperiment.precipitantCompound.name":null,"controlDataExperiment.precipitantCompound.unii":null,"controlDataExperiment.precipitantCompound.inChIKey":null,"controlDataExperiment.precipitantCompound.publicDescription":null,"controlDataExperiment.precipitantCompound.internalComment":null,"controlDataExperiment.precipitantCompound.conceptId":null,"controlDataExperiment.precipitantCompound.enantiomerOfId":null,"controlDataExperiment.objectMetaboliteCompound.id":null,"controlDataExperiment.objectMetaboliteCompound.name":null,"controlDataExperiment.objectMetaboliteCompound.unii":null,"controlDataExperiment.objectMetaboliteCompound.inChIKey":null,"controlDataExperiment.objectMetaboliteCompound.publicDescriptio":null,"controlDataExperiment.objectMetaboliteCompound.internalComment":null,"controlDataExperiment.objectMetaboliteCompound.conceptId":null,"controlDataExperiment.objectMetaboliteCompound.enantiomerOfId":null,"controlDataExperiment.enzymes.id":null,"controlDataExperiment.enzymes.name":null,"controlDataExperiment.enzymes.conceptId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.enzymeId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.experiment":null,"controlDataExperiment.transporters.id":null,"controlDataExperiment.transporters.name":null,"controlDataExperiment.transporters.conceptId":null,"controlDataExperiment.transporters.experiment_transporter_xref.":null,"controlDataExperiment.quantifiedMetabolites.id":null,"controlDataExperiment.quantifiedMetabolites.name":null,"controlDataExperiment.quantifiedMetabolites.unii":null,"controlDataExperiment.quantifiedMetabolites.inChIKey":null,"controlDataExperiment.quantifiedMetabolites.publicDescription":null,"controlDataExperiment.quantifiedMetabolites.internalComment":null,"controlDataExperiment.quantifiedMetabolites.conceptId":null,"controlDataExperiment.quantifiedMetabolites.enantiomerOfId":null,"controlDataExperiment.quantifiedMetabolites.experiment_quantifi":null,"experimentAnswers.id":7008,"experimentAnswers.text":null,"experimentAnswers.answerId":504,"experimentAnswers.experimentId":297,"experimentAnswers.questionId":104,"experimentAnswers.question.id":104,"experimentAnswers.question.text":"Phenotype","experimentAnswers.question.required":false,"experimentAnswers.question.maxAnswers":100,"experimentAnswers.question.type":null,"experimentAnswers.question.conceptId":null,"experimentAnswers.question.answers.id":511,"experimentAnswers.question.answers.text":"CYP2C19 intermediate metabolizer","experimentAnswers.question.answers.sortOrder":null,"experimentAnswers.question.answers.conceptId":null,"experimentAnswers.question.answers.questionId":104,"experimentAnswers.answer.id":504,"experimentAnswers.answer.text":"CYP2D6 ultra-rapid metabolizer","experimentAnswers.answer.sortOrder":null,"experimentAnswers.answer.conceptId":null,"experimentAnswers.answer.questionId":104},{"id":297,"uid":"NPDI-Bi2fGw","name":"CYP3A4 Experiment","overallEffect":1,"isControlData":false,"isIc50Shift":false,"croCutoff":null,"croIdentifier":null,"comment":null,"experimentalConditionsComment":null,"resultsComment":null,"internalComment":null,"objectCompoundId":26,"objectMetaboliteCompoundId":null,"precipitantCompoundId":127,"cytochromeB5Id":null,"studyId":73,"experimentTypeId":9,"testSystemId":null,"ic50ShiftExperimentId":null,"controlDataExperimentId":null,"controlDataForExperimentId":null,"naturalProductSampleId":null,"experimentType.id":9,"experimentType.name":"In Vivo Interaction","experimentType.isInVitro":false,"experimentType.isTransporter":false,"experimentType.isEnzyme":false,"experimentType.purl":"http://purl.obolibrary.org/obo/DIDEO_00000071","objectCompound.id":26,"objectCompound.name":"midazolam","objectCompound.unii":"R60L0SM5BC","objectCompound.inChIKey":"DDLIGBOFAVUZHB-UHFFFAOYSA-N","objectCompound.publicDescription":null,"objectCompound.internalComment":null,"objectCompound.conceptId":708298,"objectCompound.enantiomerOfId":null,"objectCompound.concept.conceptId":708298,"objectCompound.concept.conceptName":"Midazolam","objectCompound.concept.domainId":"Drug","objectCompound.concept.vocabularyId":"RxNorm","objectCompound.concept.conceptClassId":"Ingredient","objectCompound.concept.standardConcept":"S","objectCompound.concept.conceptCode":"6960","objectCompound.concept.validStartDate":"1970-01-01T00:00:00.000Z","objectCompound.concept.validEndDate":"2099-12-31T00:00:00.000Z","objectCompound.concept.invalid_reason":null,"precipitantCompound.id":127,"precipitantCompound.name":"goldenseal 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis 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Interaction","experimentType.isInVitro":false,"experimentType.isTransporter":false,"experimentType.isEnzyme":false,"experimentType.purl":"http://purl.obolibrary.org/obo/DIDEO_00000071","objectCompound.id":26,"objectCompound.name":"midazolam","objectCompound.unii":"R60L0SM5BC","objectCompound.inChIKey":"DDLIGBOFAVUZHB-UHFFFAOYSA-N","objectCompound.publicDescription":null,"objectCompound.internalComment":null,"objectCompound.conceptId":708298,"objectCompound.enantiomerOfId":null,"objectCompound.concept.conceptId":708298,"objectCompound.concept.conceptName":"Midazolam","objectCompound.concept.domainId":"Drug","objectCompound.concept.vocabularyId":"RxNorm","objectCompound.concept.conceptClassId":"Ingredient","objectCompound.concept.standardConcept":"S","objectCompound.concept.conceptCode":"6960","objectCompound.concept.validStartDate":"1970-01-01T00:00:00.000Z","objectCompound.concept.validEndDate":"2099-12-31T00:00:00.000Z","objectCompound.concept.invalid_reason":null,"precipitantCompound.id":127,"precipitantCompound.name":"goldenseal root 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis canadensis","study.naturalProduct.name":"Goldenseal","study.naturalProduct.itis":null,"study.naturalProduct.srs":"66690655-f406-4d67-96e3-2066aafee8d5","study.naturalProduct.source_id":"","study.naturalProduct.conceptId":null,"study.naturalProduct.concept.conceptId":null,"study.naturalProduct.concept.conceptName":null,"study.naturalProduct.concept.domainId":null,"study.naturalProduct.concept.vocabularyId":null,"study.naturalProduct.concept.conceptClassId":null,"study.naturalProduct.concept.standardConcept":null,"study.naturalProduct.concept.conceptCode":null,"study.naturalProduct.concept.validStartDate":null,"study.naturalProduct.concept.validEndDate":null,"study.naturalProduct.concept.invalid_reason":null,"study.compound.id":null,"study.compound.name":null,"study.compound.unii":null,"study.compound.inChIKey":null,"study.compound.publicDescription":null,"study.compound.internalComment":null,"study.compound.conceptId":null,"study.compound.enantiomerOfId":null,"study.studySourceType.id":1,"study.studySourceType.name":"Published report","testSystem.id":null,"testSystem.name":null,"testSystem.sortOrder":null,"testSystem.conceptId":null,"testSystem.categoryId":null,"testSystem.category.id":null,"testSystem.category.name":null,"testSystem.category.sortOrder":null,"testSystem.category.requiresCytochromeB5":null,"cytochromeB5.id":null,"cytochromeB5.name":null,"cytochromeB5.sortOrder":null,"cytochromeB5.conceptId":null,"controlDataExperiment.id":null,"controlDataExperiment.uid":null,"controlDataExperiment.name":null,"controlDataExperiment.overallEffect":null,"controlDataExperiment.isControlData":null,"controlDataExperiment.isIc50Shift":null,"controlDataExperiment.croCutoff":null,"controlDataExperiment.croIdentifier":null,"controlDataExperiment.comment":null,"controlDataExperiment.experimentalConditionsComment":null,"controlDataExperiment.resultsComment":null,"controlDataExperiment.internalComment":null,"controlDataExperiment.objectCompoundId":null,"controlDataExperiment.objectMetaboliteCompoundId":null,"controlDataExperiment.precipitantCompoundId":null,"controlDataExperiment.cytochromeB5Id":null,"controlDataExperiment.studyId":null,"controlDataExperiment.experimentTypeId":null,"controlDataExperiment.testSystemId":null,"controlDataExperiment.ic50ShiftExperimentId":null,"controlDataExperiment.controlDataExperimentId":null,"controlDataExperiment.controlDataForExperimentId":null,"controlDataExperiment.naturalProductSampleId":null,"controlDataExperiment.experimentType.id":null,"controlDataExperiment.experimentType.name":null,"controlDataExperiment.experimentType.isInVitro":null,"controlDataExperiment.experimentType.isTransporter":null,"controlDataExperiment.experimentType.isEnzyme":null,"controlDataExperiment.experimentType.purl":null,"controlDataExperiment.objectCompound.id":null,"controlDataExperiment.objectCompound.name":null,"controlDataExperiment.objectCompound.unii":null,"controlDataExperiment.objectCompound.inChIKey":null,"controlDataExperiment.objectCompound.publicDescription":null,"controlDataExperiment.objectCompound.internalComment":null,"controlDataExperiment.objectCompound.conceptId":null,"controlDataExperiment.objectCompound.enantiomerOfId":null,"controlDataExperiment.precipitantCompound.id":null,"controlDataExperiment.precipitantCompound.name":null,"controlDataExperiment.precipitantCompound.unii":null,"controlDataExperiment.precipitantCompound.inChIKey":null,"controlDataExperiment.precipitantCompound.publicDescription":null,"controlDataExperiment.precipitantCompound.internalComment":null,"controlDataExperiment.precipitantCompound.conceptId":null,"controlDataExperiment.precipitantCompound.enantiomerOfId":null,"controlDataExperiment.objectMetaboliteCompound.id":null,"controlDataExperiment.objectMetaboliteCompound.name":null,"controlDataExperiment.objectMetaboliteCompound.unii":null,"controlDataExperiment.objectMetaboliteCompound.inChIKey":null,"controlDataExperiment.objectMetaboliteCompound.publicDescriptio":null,"controlDataExperiment.objectMetaboliteCompound.internalComment":null,"controlDataExperiment.objectMetaboliteCompound.conceptId":null,"controlDataExperiment.objectMetaboliteCompound.enantiomerOfId":null,"controlDataExperiment.enzymes.id":null,"controlDataExperiment.enzymes.name":null,"controlDataExperiment.enzymes.conceptId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.enzymeId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.experiment":null,"controlDataExperiment.transporters.id":null,"controlDataExperiment.transporters.name":null,"controlDataExperiment.transporters.conceptId":null,"controlDataExperiment.transporters.experiment_transporter_xref.":null,"controlDataExperiment.quantifiedMetabolites.id":null,"controlDataExperiment.quantifiedMetabolites.name":null,"controlDataExperiment.quantifiedMetabolites.unii":null,"controlDataExperiment.quantifiedMetabolites.inChIKey":null,"controlDataExperiment.quantifiedMetabolites.publicDescription":null,"controlDataExperiment.quantifiedMetabolites.internalComment":null,"controlDataExperiment.quantifiedMetabolites.conceptId":null,"controlDataExperiment.quantifiedMetabolites.enantiomerOfId":null,"controlDataExperiment.quantifiedMetabolites.experiment_quantifi":null,"experimentAnswers.id":7008,"experimentAnswers.text":null,"experimentAnswers.answerId":504,"experimentAnswers.experimentId":297,"experimentAnswers.questionId":104,"experimentAnswers.question.id":104,"experimentAnswers.question.text":"Phenotype","experimentAnswers.question.required":false,"experimentAnswers.question.maxAnswers":100,"experimentAnswers.question.type":null,"experimentAnswers.question.conceptId":null,"experimentAnswers.question.answers.id":510,"experimentAnswers.question.answers.text":"CYP2C19 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis 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report","testSystem.id":null,"testSystem.name":null,"testSystem.sortOrder":null,"testSystem.conceptId":null,"testSystem.categoryId":null,"testSystem.category.id":null,"testSystem.category.name":null,"testSystem.category.sortOrder":null,"testSystem.category.requiresCytochromeB5":null,"cytochromeB5.id":null,"cytochromeB5.name":null,"cytochromeB5.sortOrder":null,"cytochromeB5.conceptId":null,"controlDataExperiment.id":null,"controlDataExperiment.uid":null,"controlDataExperiment.name":null,"controlDataExperiment.overallEffect":null,"controlDataExperiment.isControlData":null,"controlDataExperiment.isIc50Shift":null,"controlDataExperiment.croCutoff":null,"controlDataExperiment.croIdentifier":null,"controlDataExperiment.comment":null,"controlDataExperiment.experimentalConditionsComment":null,"controlDataExperiment.resultsComment":null,"controlDataExperiment.internalComment":null,"controlDataExperiment.objectCompoundId":null,"controlDataExperiment.objectMetaboliteCompoundId":null,"controlDataExperiment.precipitantCompoundId":null,"controlDataExperiment.cytochromeB5Id":null,"controlDataExperiment.studyId":null,"controlDataExperiment.experimentTypeId":null,"controlDataExperiment.testSystemId":null,"controlDataExperiment.ic50ShiftExperimentId":null,"controlDataExperiment.controlDataExperimentId":null,"controlDataExperiment.controlDataForExperimentId":null,"controlDataExperiment.naturalProductSampleId":null,"controlDataExperiment.experimentType.id":null,"controlDataExperiment.experimentType.name":null,"controlDataExperiment.experimentType.isInVitro":null,"controlDataExperiment.experimentType.isTransporter":null,"controlDataExperiment.experimentType.isEnzyme":null,"controlDataExperiment.experimentType.purl":null,"controlDataExperiment.objectCompound.id":null,"controlDataExperiment.objectCompound.name":null,"controlDataExperiment.objectCompound.unii":null,"controlDataExperiment.objectCompound.inChIKey":null,"controlDataExperiment.objectCompound.publicDescription":null,"controlDataExperiment.objectCompound.internalComment":null,"controlDataExperiment.objectCompound.conceptId":null,"controlDataExperiment.objectCompound.enantiomerOfId":null,"controlDataExperiment.precipitantCompound.id":null,"controlDataExperiment.precipitantCompound.name":null,"controlDataExperiment.precipitantCompound.unii":null,"controlDataExperiment.precipitantCompound.inChIKey":null,"controlDataExperiment.precipitantCompound.publicDescription":null,"controlDataExperiment.precipitantCompound.internalComment":null,"controlDataExperiment.precipitantCompound.conceptId":null,"controlDataExperiment.precipitantCompound.enantiomerOfId":null,"controlDataExperiment.objectMetaboliteCompound.id":null,"controlDataExperiment.objectMetaboliteCompound.name":null,"controlDataExperiment.objectMetaboliteCompound.unii":null,"controlDataExperiment.objectMetaboliteCompound.inChIKey":null,"controlDataExperiment.objectMetaboliteCompound.publicDescriptio":null,"controlDataExperiment.objectMetaboliteCompound.internalComment":null,"controlDataExperiment.objectMetaboliteCompound.conceptId":null,"controlDataExperiment.objectMetaboliteCompound.enantiomerOfId":null,"controlDataExperiment.enzymes.id":null,"controlDataExperiment.enzymes.name":null,"controlDataExperiment.enzymes.conceptId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.enzymeId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.experiment":null,"controlDataExperiment.transporters.id":null,"controlDataExperiment.transporters.name":null,"controlDataExperiment.transporters.conceptId":null,"controlDataExperiment.transporters.experiment_transporter_xref.":null,"controlDataExperiment.quantifiedMetabolites.id":null,"controlDataExperiment.quantifiedMetabolites.name":null,"controlDataExperiment.quantifiedMetabolites.unii":null,"controlDataExperiment.quantifiedMetabolites.inChIKey":null,"controlDataExperiment.quantifiedMetabolites.publicDescription":null,"controlDataExperiment.quantifiedMetabolites.internalComment":null,"controlDataExperiment.quantifiedMetabolites.conceptId":null,"controlDataExperiment.quantifiedMetabolites.enantiomerOfId":null,"controlDataExperiment.quantifiedMetabolites.experiment_quantifi":null,"experimentAnswers.id":7008,"experimentAnswers.text":null,"experimentAnswers.answerId":504,"experimentAnswers.experimentId":297,"experimentAnswers.questionId":104,"experimentAnswers.question.id":104,"experimentAnswers.question.text":"Phenotype","experimentAnswers.question.required":false,"experimentAnswers.question.maxAnswers":100,"experimentAnswers.question.type":null,"experimentAnswers.question.conceptId":null,"experimentAnswers.question.answers.id":513,"experimentAnswers.question.answers.text":"CYP2C19 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Interaction","experimentType.isInVitro":false,"experimentType.isTransporter":false,"experimentType.isEnzyme":false,"experimentType.purl":"http://purl.obolibrary.org/obo/DIDEO_00000071","objectCompound.id":26,"objectCompound.name":"midazolam","objectCompound.unii":"R60L0SM5BC","objectCompound.inChIKey":"DDLIGBOFAVUZHB-UHFFFAOYSA-N","objectCompound.publicDescription":null,"objectCompound.internalComment":null,"objectCompound.conceptId":708298,"objectCompound.enantiomerOfId":null,"objectCompound.concept.conceptId":708298,"objectCompound.concept.conceptName":"Midazolam","objectCompound.concept.domainId":"Drug","objectCompound.concept.vocabularyId":"RxNorm","objectCompound.concept.conceptClassId":"Ingredient","objectCompound.concept.standardConcept":"S","objectCompound.concept.conceptCode":"6960","objectCompound.concept.validStartDate":"1970-01-01T00:00:00.000Z","objectCompound.concept.validEndDate":"2099-12-31T00:00:00.000Z","objectCompound.concept.invalid_reason":null,"precipitantCompound.id":127,"precipitantCompound.name":"goldenseal root 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis canadensis","study.naturalProduct.name":"Goldenseal","study.naturalProduct.itis":null,"study.naturalProduct.srs":"66690655-f406-4d67-96e3-2066aafee8d5","study.naturalProduct.source_id":"","study.naturalProduct.conceptId":null,"study.naturalProduct.concept.conceptId":null,"study.naturalProduct.concept.conceptName":null,"study.naturalProduct.concept.domainId":null,"study.naturalProduct.concept.vocabularyId":null,"study.naturalProduct.concept.conceptClassId":null,"study.naturalProduct.concept.standardConcept":null,"study.naturalProduct.concept.conceptCode":null,"study.naturalProduct.concept.validStartDate":null,"study.naturalProduct.concept.validEndDate":null,"study.naturalProduct.concept.invalid_reason":null,"study.compound.id":null,"study.compound.name":null,"study.compound.unii":null,"study.compound.inChIKey":null,"study.compound.publicDescription":null,"study.compound.internalComment":null,"study.compound.conceptId":null,"study.compound.enantiomerOfId":null,"study.studySourceType.id":1,"study.studySourceType.name":"Published report","testSystem.id":null,"testSystem.name":null,"testSystem.sortOrder":null,"testSystem.conceptId":null,"testSystem.categoryId":null,"testSystem.category.id":null,"testSystem.category.name":null,"testSystem.category.sortOrder":null,"testSystem.category.requiresCytochromeB5":null,"cytochromeB5.id":null,"cytochromeB5.name":null,"cytochromeB5.sortOrder":null,"cytochromeB5.conceptId":null,"controlDataExperiment.id":null,"controlDataExperiment.uid":null,"controlDataExperiment.name":null,"controlDataExperiment.overallEffect":null,"controlDataExperiment.isControlData":null,"controlDataExperiment.isIc50Shift":null,"controlDataExperiment.croCutoff":null,"controlDataExperiment.croIdentifier":null,"controlDataExperiment.comment":null,"controlDataExperiment.experimentalConditionsComment":null,"controlDataExperiment.resultsComment":null,"controlDataExperiment.internalComment":null,"controlDataExperiment.objectCompoundId":null,"controlDataExperiment.objectMetaboliteCompoundId":null,"controlDataExperiment.precipitantCompoundId":null,"controlDataExperiment.cytochromeB5Id":null,"controlDataExperiment.studyId":null,"controlDataExperiment.experimentTypeId":null,"controlDataExperiment.testSystemId":null,"controlDataExperiment.ic50ShiftExperimentId":null,"controlDataExperiment.controlDataExperimentId":null,"controlDataExperiment.controlDataForExperimentId":null,"controlDataExperiment.naturalProductSampleId":null,"controlDataExperiment.experimentType.id":null,"controlDataExperiment.experimentType.name":null,"controlDataExperiment.experimentType.isInVitro":null,"controlDataExperiment.experimentType.isTransporter":null,"controlDataExperiment.experimentType.isEnzyme":null,"controlDataExperiment.experimentType.purl":null,"controlDataExperiment.objectCompound.id":null,"controlDataExperiment.objectCompound.name":null,"controlDataExperiment.objectCompound.unii":null,"controlDataExperiment.objectCompound.inChIKey":null,"controlDataExperiment.objectCompound.publicDescription":null,"controlDataExperiment.objectCompound.internalComment":null,"controlDataExperiment.objectCompound.conceptId":null,"controlDataExperiment.objectCompound.enantiomerOfId":null,"controlDataExperiment.precipitantCompound.id":null,"controlDataExperiment.precipitantCompound.name":null,"controlDataExperiment.precipitantCompound.unii":null,"controlDataExperiment.precipitantCompound.inChIKey":null,"controlDataExperiment.precipitantCompound.publicDescription":null,"controlDataExperiment.precipitantCompound.internalComment":null,"controlDataExperiment.precipitantCompound.conceptId":null,"controlDataExperiment.precipitantCompound.enantiomerOfId":null,"controlDataExperiment.objectMetaboliteCompound.id":null,"controlDataExperiment.objectMetaboliteCompound.name":null,"controlDataExperiment.objectMetaboliteCompound.unii":null,"controlDataExperiment.objectMetaboliteCompound.inChIKey":null,"controlDataExperiment.objectMetaboliteCompound.publicDescriptio":null,"controlDataExperiment.objectMetaboliteCompound.internalComment":null,"controlDataExperiment.objectMetaboliteCompound.conceptId":null,"controlDataExperiment.objectMetaboliteCompound.enantiomerOfId":null,"controlDataExperiment.enzymes.id":null,"controlDataExperiment.enzymes.name":null,"controlDataExperiment.enzymes.conceptId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.enzymeId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.experiment":null,"controlDataExperiment.transporters.id":null,"controlDataExperiment.transporters.name":null,"controlDataExperiment.transporters.conceptId":null,"controlDataExperiment.transporters.experiment_transporter_xref.":null,"controlDataExperiment.quantifiedMetabolites.id":null,"controlDataExperiment.quantifiedMetabolites.name":null,"controlDataExperiment.quantifiedMetabolites.unii":null,"controlDataExperiment.quantifiedMetabolites.inChIKey":null,"controlDataExperiment.quantifiedMetabolites.publicDescription":null,"controlDataExperiment.quantifiedMetabolites.internalComment":null,"controlDataExperiment.quantifiedMetabolites.conceptId":null,"controlDataExperiment.quantifiedMetabolites.enantiomerOfId":null,"controlDataExperiment.quantifiedMetabolites.experiment_quantifi":null,"experimentAnswers.id":7008,"experimentAnswers.text":null,"experimentAnswers.answerId":504,"experimentAnswers.experimentId":297,"experimentAnswers.questionId":104,"experimentAnswers.question.id":104,"experimentAnswers.question.text":"Phenotype","experimentAnswers.question.required":false,"experimentAnswers.question.maxAnswers":100,"experimentAnswers.question.type":null,"experimentAnswers.question.conceptId":null,"experimentAnswers.question.answers.id":514,"experimentAnswers.question.answers.text":"CYP2C19 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis canadensis","study.naturalProduct.name":"Goldenseal","study.naturalProduct.itis":null,"study.naturalProduct.srs":"66690655-f406-4d67-96e3-2066aafee8d5","study.naturalProduct.source_id":"","study.naturalProduct.conceptId":null,"study.naturalProduct.concept.conceptId":null,"study.naturalProduct.concept.conceptName":null,"study.naturalProduct.concept.domainId":null,"study.naturalProduct.concept.vocabularyId":null,"study.naturalProduct.concept.conceptClassId":null,"study.naturalProduct.concept.standardConcept":null,"study.naturalProduct.concept.conceptCode":null,"study.naturalProduct.concept.validStartDate":null,"study.naturalProduct.concept.validEndDate":null,"study.naturalProduct.concept.invalid_reason":null,"study.compound.id":null,"study.compound.name":null,"study.compound.unii":null,"study.compound.inChIKey":null,"study.compound.publicDescription":null,"study.compound.internalComment":null,"study.compound.conceptId":null,"study.compound.enantiomerOfId":null,"study.studySourceType.id":1,"study.studySourceType.name":"Published report","testSystem.id":null,"testSystem.name":null,"testSystem.sortOrder":null,"testSystem.conceptId":null,"testSystem.categoryId":null,"testSystem.category.id":null,"testSystem.category.name":null,"testSystem.category.sortOrder":null,"testSystem.category.requiresCytochromeB5":null,"cytochromeB5.id":null,"cytochromeB5.name":null,"cytochromeB5.sortOrder":null,"cytochromeB5.conceptId":null,"controlDataExperiment.id":null,"controlDataExperiment.uid":null,"controlDataExperiment.name":null,"controlDataExperiment.overallEffect":null,"controlDataExperiment.isControlData":null,"controlDataExperiment.isIc50Shift":null,"controlDataExperiment.croCutoff":null,"controlDataExperiment.croIdentifier":null,"controlDataExperiment.comment":null,"controlDataExperiment.experimentalConditionsComment":null,"controlDataExperiment.resultsComment":null,"controlDataExperiment.internalComment":null,"controlDataExperiment.objectCompoundId":null,"controlDataExperiment.objectMetaboliteCompoundId":null,"controlDataExperiment.precipitantCompoundId":null,"controlDataExperiment.cytochromeB5Id":null,"controlDataExperiment.studyId":null,"controlDataExperiment.experimentTypeId":null,"controlDataExperiment.testSystemId":null,"controlDataExperiment.ic50ShiftExperimentId":null,"controlDataExperiment.controlDataExperimentId":null,"controlDataExperiment.controlDataForExperimentId":null,"controlDataExperiment.naturalProductSampleId":null,"controlDataExperiment.experimentType.id":null,"controlDataExperiment.experimentType.name":null,"controlDataExperiment.experimentType.isInVitro":null,"controlDataExperiment.experimentType.isTransporter":null,"controlDataExperiment.experimentType.isEnzyme":null,"controlDataExperiment.experimentType.purl":null,"controlDataExperiment.objectCompound.id":null,"controlDataExperiment.objectCompound.name":null,"controlDataExperiment.objectCompound.unii":null,"controlDataExperiment.objectCompound.inChIKey":null,"controlDataExperiment.objectCompound.publicDescription":null,"controlDataExperiment.objectCompound.internalComment":null,"controlDataExperiment.objectCompound.conceptId":null,"controlDataExperiment.objectCompound.enantiomerOfId":null,"controlDataExperiment.precipitantCompound.id":null,"controlDataExperiment.precipitantCompound.name":null,"controlDataExperiment.precipitantCompound.unii":null,"controlDataExperiment.precipitantCompound.inChIKey":null,"controlDataExperiment.precipitantCompound.publicDescription":null,"controlDataExperiment.precipitantCompound.internalComment":null,"controlDataExperiment.precipitantCompound.conceptId":null,"controlDataExperiment.precipitantCompound.enantiomerOfId":null,"controlDataExperiment.objectMetaboliteCompound.id":null,"controlDataExperiment.objectMetaboliteCompound.name":null,"controlDataExperiment.objectMetaboliteCompound.unii":null,"controlDataExperiment.objectMetaboliteCompound.inChIKey":null,"controlDataExperiment.objectMetaboliteCompound.publicDescriptio":null,"controlDataExperiment.objectMetaboliteCompound.internalComment":null,"controlDataExperiment.objectMetaboliteCompound.conceptId":null,"controlDataExperiment.objectMetaboliteCompound.enantiomerOfId":null,"controlDataExperiment.enzymes.id":null,"controlDataExperiment.enzymes.name":null,"controlDataExperiment.enzymes.conceptId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.enzymeId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.experiment":null,"controlDataExperiment.transporters.id":null,"controlDataExperiment.transporters.name":null,"controlDataExperiment.transporters.conceptId":null,"controlDataExperiment.transporters.experiment_transporter_xref.":null,"controlDataExperiment.quantifiedMetabolites.id":null,"controlDataExperiment.quantifiedMetabolites.name":null,"controlDataExperiment.quantifiedMetabolites.unii":null,"controlDataExperiment.quantifiedMetabolites.inChIKey":null,"controlDataExperiment.quantifiedMetabolites.publicDescription":null,"controlDataExperiment.quantifiedMetabolites.internalComment":null,"controlDataExperiment.quantifiedMetabolites.conceptId":null,"controlDataExperiment.quantifiedMetabolites.enantiomerOfId":null,"controlDataExperiment.quantifiedMetabolites.experiment_quantifi":null,"experimentAnswers.id":7008,"experimentAnswers.text":null,"experimentAnswers.answerId":504,"experimentAnswers.experimentId":297,"experimentAnswers.questionId":104,"experimentAnswers.question.id":104,"experimentAnswers.question.text":"Phenotype","experimentAnswers.question.required":false,"experimentAnswers.question.maxAnswers":100,"experimentAnswers.question.type":null,"experimentAnswers.question.conceptId":null,"experimentAnswers.question.answers.id":501,"experimentAnswers.question.answers.text":"CYP2D6 intermediate metabolizer","experimentAnswers.question.answers.sortOrder":null,"experimentAnswers.question.answers.conceptId":null,"experimentAnswers.question.answers.questionId":104,"experimentAnswers.answer.id":504,"experimentAnswers.answer.text":"CYP2D6 ultra-rapid metabolizer","experimentAnswers.answer.sortOrder":null,"experimentAnswers.answer.conceptId":null,"experimentAnswers.answer.questionId":104},{"id":297,"uid":"NPDI-Bi2fGw","name":"CYP3A4 Experiment","overallEffect":1,"isControlData":false,"isIc50Shift":false,"croCutoff":null,"croIdentifier":null,"comment":null,"experimentalConditionsComment":null,"resultsComment":null,"internalComment":null,"objectCompoundId":26,"objectMetaboliteCompoundId":null,"precipitantCompoundId":127,"cytochromeB5Id":null,"studyId":73,"experimentTypeId":9,"testSystemId":null,"ic50ShiftExperimentId":null,"controlDataExperimentId":null,"controlDataForExperimentId":null,"naturalProductSampleId":null,"experimentType.id":9,"experimentType.name":"In Vivo Interaction","experimentType.isInVitro":false,"experimentType.isTransporter":false,"experimentType.isEnzyme":false,"experimentType.purl":"http://purl.obolibrary.org/obo/DIDEO_00000071","objectCompound.id":26,"objectCompound.name":"midazolam","objectCompound.unii":"R60L0SM5BC","objectCompound.inChIKey":"DDLIGBOFAVUZHB-UHFFFAOYSA-N","objectCompound.publicDescription":null,"objectCompound.internalComment":null,"objectCompound.conceptId":708298,"objectCompound.enantiomerOfId":null,"objectCompound.concept.conceptId":708298,"objectCompound.concept.conceptName":"Midazolam","objectCompound.concept.domainId":"Drug","objectCompound.concept.vocabularyId":"RxNorm","objectCompound.concept.conceptClassId":"Ingredient","objectCompound.concept.standardConcept":"S","objectCompound.concept.conceptCode":"6960","objectCompound.concept.validStartDate":"1970-01-01T00:00:00.000Z","objectCompound.concept.validEndDate":"2099-12-31T00:00:00.000Z","objectCompound.concept.invalid_reason":null,"precipitantCompound.id":127,"precipitantCompound.name":"goldenseal root extract","precipitantCompound.unii":null,"precipitantCompound.inChIKey":null,"precipitantCompound.publicDescription":null,"precipitantCompound.internalComment":null,"precipitantCompound.conceptId":null,"precipitantCompound.enantiomerOfId":null,"precipitantCompound.concept.conceptId":null,"precipitantCompound.concept.conceptName":null,"precipitantCompound.concept.domainId":null,"precipitantCompound.concept.vocabularyId":null,"precipitantCompound.concept.conceptClassId":null,"precipitantCompound.concept.standardConcept":null,"precipitantCompound.concept.conceptCode":null,"precipitantCompound.concept.validStartDate":null,"precipitantCompound.concept.validEndDate":null,"precipitantCompound.concept.invalid_reason":null,"objectMetaboliteCompound.id":null,"objectMetaboliteCompound.name":null,"objectMetaboliteCompound.unii":null,"objectMetaboliteCompound.inChIKey":null,"objectMetaboliteCompound.publicDescription":null,"objectMetaboliteCompound.internalComment":null,"objectMetaboliteCompound.conceptId":null,"objectMetaboliteCompound.enantiomerOfId":null,"objectMetaboliteCompound.concept.conceptId":null,"objectMetaboliteCompound.concept.conceptName":null,"objectMetaboliteCompound.concept.domainId":null,"objectMetaboliteCompound.concept.vocabularyId":null,"objectMetaboliteCompound.concept.conceptClassId":null,"objectMetaboliteCompound.concept.standardConcept":null,"objectMetaboliteCompound.concept.conceptCode":null,"objectMetaboliteCompound.concept.validStartDate":null,"objectMetaboliteCompound.concept.validEndDate":null,"objectMetaboliteCompound.concept.invalid_reason":null,"enzymes.id":13,"enzymes.name":"CYP3A4","enzymes.conceptId":4306811,"enzymes.experiment_enzyme_xref.enzymeId":13,"enzymes.experiment_enzyme_xref.experimentId":297,"transporters.id":null,"transporters.name":null,"transporters.conceptId":null,"transporters.experiment_transporter_xref.experimentId":null,"transporters.experiment_transporter_xref.transporterId":null,"quantifiedMetabolites.id":null,"quantifiedMetabolites.name":null,"quantifiedMetabolites.unii":null,"quantifiedMetabolites.inChIKey":null,"quantifiedMetabolites.publicDescription":null,"quantifiedMetabolites.internalComment":null,"quantifiedMetabolites.conceptId":null,"quantifiedMetabolites.enantiomerOfId":null,"quantifiedMetabolites.experiment_quantified_metabolite_xref.com":null,"quantifiedMetabolites.experiment_quantified_metabolite_xref.exp":null,"study.id":73,"study.uid":"NPDI-ftEv0g","study.name":"In vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis 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Interaction","experimentType.isInVitro":false,"experimentType.isTransporter":false,"experimentType.isEnzyme":false,"experimentType.purl":"http://purl.obolibrary.org/obo/DIDEO_00000071","objectCompound.id":26,"objectCompound.name":"midazolam","objectCompound.unii":"R60L0SM5BC","objectCompound.inChIKey":"DDLIGBOFAVUZHB-UHFFFAOYSA-N","objectCompound.publicDescription":null,"objectCompound.internalComment":null,"objectCompound.conceptId":708298,"objectCompound.enantiomerOfId":null,"objectCompound.concept.conceptId":708298,"objectCompound.concept.conceptName":"Midazolam","objectCompound.concept.domainId":"Drug","objectCompound.concept.vocabularyId":"RxNorm","objectCompound.concept.conceptClassId":"Ingredient","objectCompound.concept.standardConcept":"S","objectCompound.concept.conceptCode":"6960","objectCompound.concept.validStartDate":"1970-01-01T00:00:00.000Z","objectCompound.concept.validEndDate":"2099-12-31T00:00:00.000Z","objectCompound.concept.invalid_reason":null,"precipitantCompound.id":127,"precipitantCompound.name":"goldenseal 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis canadensis","study.naturalProduct.name":"Goldenseal","study.naturalProduct.itis":null,"study.naturalProduct.srs":"66690655-f406-4d67-96e3-2066aafee8d5","study.naturalProduct.source_id":"","study.naturalProduct.conceptId":null,"study.naturalProduct.concept.conceptId":null,"study.naturalProduct.concept.conceptName":null,"study.naturalProduct.concept.domainId":null,"study.naturalProduct.concept.vocabularyId":null,"study.naturalProduct.concept.conceptClassId":null,"study.naturalProduct.concept.standardConcept":null,"study.naturalProduct.concept.conceptCode":null,"study.naturalProduct.concept.validStartDate":null,"study.naturalProduct.concept.validEndDate":null,"study.naturalProduct.concept.invalid_reason":null,"study.compound.id":null,"study.compound.name":null,"study.compound.unii":null,"study.compound.inChIKey":null,"study.compound.publicDescription":null,"study.compound.internalComment":null,"study.compound.conceptId":null,"study.compound.enantiomerOfId":null,"study.studySourceType.id":1,"study.studySourceType.name":"Published report","testSystem.id":null,"testSystem.name":null,"testSystem.sortOrder":null,"testSystem.conceptId":null,"testSystem.categoryId":null,"testSystem.category.id":null,"testSystem.category.name":null,"testSystem.category.sortOrder":null,"testSystem.category.requiresCytochromeB5":null,"cytochromeB5.id":null,"cytochromeB5.name":null,"cytochromeB5.sortOrder":null,"cytochromeB5.conceptId":null,"controlDataExperiment.id":null,"controlDataExperiment.uid":null,"controlDataExperiment.name":null,"controlDataExperiment.overallEffect":null,"controlDataExperiment.isControlData":null,"controlDataExperiment.isIc50Shift":null,"controlDataExperiment.croCutoff":null,"controlDataExperiment.croIdentifier":null,"controlDataExperiment.comment":null,"controlDataExperiment.experimentalConditionsComment":null,"controlDataExperiment.resultsComment":null,"controlDataExperiment.internalComment":null,"controlDataExperiment.objectCompoundId":null,"controlDataExperiment.objectMetaboliteCompoundId":null,"controlDataExperiment.precipitantCompoundId":null,"controlDataExperiment.cytochromeB5Id":null,"controlDataExperiment.studyId":null,"controlDataExperiment.experimentTypeId":null,"controlDataExperiment.testSystemId":null,"controlDataExperiment.ic50ShiftExperimentId":null,"controlDataExperiment.controlDataExperimentId":null,"controlDataExperiment.controlDataForExperimentId":null,"controlDataExperiment.naturalProductSampleId":null,"controlDataExperiment.experimentType.id":null,"controlDataExperiment.experimentType.name":null,"controlDataExperiment.experimentType.isInVitro":null,"controlDataExperiment.experimentType.isTransporter":null,"controlDataExperiment.experimentType.isEnzyme":null,"controlDataExperiment.experimentType.purl":null,"controlDataExperiment.objectCompound.id":null,"controlDataExperiment.objectCompound.name":null,"controlDataExperiment.objectCompound.unii":null,"controlDataExperiment.objectCompound.inChIKey":null,"controlDataExperiment.objectCompound.publicDescription":null,"controlDataExperiment.objectCompound.internalComment":null,"controlDataExperiment.objectCompound.conceptId":null,"controlDataExperiment.objectCompound.enantiomerOfId":null,"controlDataExperiment.precipitantCompound.id":null,"controlDataExperiment.precipitantCompound.name":null,"controlDataExperiment.precipitantCompound.unii":null,"controlDataExperiment.precipitantCompound.inChIKey":null,"controlDataExperiment.precipitantCompound.publicDescription":null,"controlDataExperiment.precipitantCompound.internalComment":null,"controlDataExperiment.precipitantCompound.conceptId":null,"controlDataExperiment.precipitantCompound.enantiomerOfId":null,"controlDataExperiment.objectMetaboliteCompound.id":null,"controlDataExperiment.objectMetaboliteCompound.name":null,"controlDataExperiment.objectMetaboliteCompound.unii":null,"controlDataExperiment.objectMetaboliteCompound.inChIKey":null,"controlDataExperiment.objectMetaboliteCompound.publicDescriptio":null,"controlDataExperiment.objectMetaboliteCompound.internalComment":null,"controlDataExperiment.objectMetaboliteCompound.conceptId":null,"controlDataExperiment.objectMetaboliteCompound.enantiomerOfId":null,"controlDataExperiment.enzymes.id":null,"controlDataExperiment.enzymes.name":null,"controlDataExperiment.enzymes.conceptId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.enzymeId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.experiment":null,"controlDataExperiment.transporters.id":null,"controlDataExperiment.transporters.name":null,"controlDataExperiment.transporters.conceptId":null,"controlDataExperiment.transporters.experiment_transporter_xref.":null,"controlDataExperiment.quantifiedMetabolites.id":null,"controlDataExperiment.quantifiedMetabolites.name":null,"controlDataExperiment.quantifiedMetabolites.unii":null,"controlDataExperiment.quantifiedMetabolites.inChIKey":null,"controlDataExperiment.quantifiedMetabolites.publicDescription":null,"controlDataExperiment.quantifiedMetabolites.internalComment":null,"controlDataExperiment.quantifiedMetabolites.conceptId":null,"controlDataExperiment.quantifiedMetabolites.enantiomerOfId":null,"controlDataExperiment.quantifiedMetabolites.experiment_quantifi":null,"experimentAnswers.id":7008,"experimentAnswers.text":null,"experimentAnswers.answerId":504,"experimentAnswers.experimentId":297,"experimentAnswers.questionId":104,"experimentAnswers.question.id":104,"experimentAnswers.question.text":"Phenotype","experimentAnswers.question.required":false,"experimentAnswers.question.maxAnswers":100,"experimentAnswers.question.type":null,"experimentAnswers.question.conceptId":null,"experimentAnswers.question.answers.id":500,"experimentAnswers.question.answers.text":"CYP2D6 poor metabolizer","experimentAnswers.question.answers.sortOrder":null,"experimentAnswers.question.answers.conceptId":null,"experimentAnswers.question.answers.questionId":104,"experimentAnswers.answer.id":504,"experimentAnswers.answer.text":"CYP2D6 ultra-rapid metabolizer","experimentAnswers.answer.sortOrder":null,"experimentAnswers.answer.conceptId":null,"experimentAnswers.answer.questionId":104},{"id":297,"uid":"NPDI-Bi2fGw","name":"CYP3A4 Experiment","overallEffect":1,"isControlData":false,"isIc50Shift":false,"croCutoff":null,"croIdentifier":null,"comment":null,"experimentalConditionsComment":null,"resultsComment":null,"internalComment":null,"objectCompoundId":26,"objectMetaboliteCompoundId":null,"precipitantCompoundId":127,"cytochromeB5Id":null,"studyId":73,"experimentTypeId":9,"testSystemId":null,"ic50ShiftExperimentId":null,"controlDataExperimentId":null,"controlDataForExperimentId":null,"naturalProductSampleId":null,"experimentType.id":9,"experimentType.name":"In Vivo Interaction","experimentType.isInVitro":false,"experimentType.isTransporter":false,"experimentType.isEnzyme":false,"experimentType.purl":"http://purl.obolibrary.org/obo/DIDEO_00000071","objectCompound.id":26,"objectCompound.name":"midazolam","objectCompound.unii":"R60L0SM5BC","objectCompound.inChIKey":"DDLIGBOFAVUZHB-UHFFFAOYSA-N","objectCompound.publicDescription":null,"objectCompound.internalComment":null,"objectCompound.conceptId":708298,"objectCompound.enantiomerOfId":null,"objectCompound.concept.conceptId":708298,"objectCompound.concept.conceptName":"Midazolam","objectCompound.concept.domainId":"Drug","objectCompound.concept.vocabularyId":"RxNorm","objectCompound.concept.conceptClassId":"Ingredient","objectCompound.concept.standardConcept":"S","objectCompound.concept.conceptCode":"6960","objectCompound.concept.validStartDate":"1970-01-01T00:00:00.000Z","objectCompound.concept.validEndDate":"2099-12-31T00:00:00.000Z","objectCompound.concept.invalid_reason":null,"precipitantCompound.id":127,"precipitantCompound.name":"goldenseal 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extract","precipitantCompound.unii":null,"precipitantCompound.inChIKey":null,"precipitantCompound.publicDescription":null,"precipitantCompound.internalComment":null,"precipitantCompound.conceptId":null,"precipitantCompound.enantiomerOfId":null,"precipitantCompound.concept.conceptId":null,"precipitantCompound.concept.conceptName":null,"precipitantCompound.concept.domainId":null,"precipitantCompound.concept.vocabularyId":null,"precipitantCompound.concept.conceptClassId":null,"precipitantCompound.concept.standardConcept":null,"precipitantCompound.concept.conceptCode":null,"precipitantCompound.concept.validStartDate":null,"precipitantCompound.concept.validEndDate":null,"precipitantCompound.concept.invalid_reason":null,"objectMetaboliteCompound.id":null,"objectMetaboliteCompound.name":null,"objectMetaboliteCompound.unii":null,"objectMetaboliteCompound.inChIKey":null,"objectMetaboliteCompound.publicDescription":null,"objectMetaboliteCompound.internalComment":null,"objectMetaboliteCompound.conceptId":null,"objectMetaboliteCompound.enantiomerOfId":null,"objectMetaboliteCompound.concept.conceptId":null,"objectMetaboliteCompound.concept.conceptName":null,"objectMetaboliteCompound.concept.domainId":null,"objectMetaboliteCompound.concept.vocabularyId":null,"objectMetaboliteCompound.concept.conceptClassId":null,"objectMetaboliteCompound.concept.standardConcept":null,"objectMetaboliteCompound.concept.conceptCode":null,"objectMetaboliteCompound.concept.validStartDate":null,"objectMetaboliteCompound.concept.validEndDate":null,"objectMetaboliteCompound.concept.invalid_reason":null,"enzymes.id":13,"enzymes.name":"CYP3A4","enzymes.conceptId":4306811,"enzymes.experiment_enzyme_xref.enzymeId":13,"enzymes.experiment_enzyme_xref.experimentId":297,"transporters.id":null,"transporters.name":null,"transporters.conceptId":null,"transporters.experiment_transporter_xref.experimentId":null,"transporters.experiment_transporter_xref.transporterId":null,"quantifiedMetabolites.id":null,"quantifiedMetabolites.name":null,"quantifiedMetabolites.unii":null,"quantifiedMetabolites.inChIKey":null,"quantifiedMetabolites.publicDescription":null,"quantifiedMetabolites.internalComment":null,"quantifiedMetabolites.conceptId":null,"quantifiedMetabolites.enantiomerOfId":null,"quantifiedMetabolites.experiment_quantified_metabolite_xref.com":null,"quantifiedMetabolites.experiment_quantified_metabolite_xref.exp":null,"study.id":73,"study.uid":"NPDI-ftEv0g","study.name":"In vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis canadensis","study.naturalProduct.name":"Goldenseal","study.naturalProduct.itis":null,"study.naturalProduct.srs":"66690655-f406-4d67-96e3-2066aafee8d5","study.naturalProduct.source_id":"","study.naturalProduct.conceptId":null,"study.naturalProduct.concept.conceptId":null,"study.naturalProduct.concept.conceptName":null,"study.naturalProduct.concept.domainId":null,"study.naturalProduct.concept.vocabularyId":null,"study.naturalProduct.concept.conceptClassId":null,"study.naturalProduct.concept.standardConcept":null,"study.naturalProduct.concept.conceptCode":null,"study.naturalProduct.concept.validStartDate":null,"study.naturalProduct.concept.validEndDate":null,"study.naturalProduct.concept.invalid_reason":null,"study.compound.id":null,"study.compound.name":null,"study.compound.unii":null,"study.compound.inChIKey":null,"study.compound.publicDescription":null,"study.compound.internalComment":null,"study.compound.conceptId":null,"study.compound.enantiomerOfId":null,"study.studySourceType.id":1,"study.studySourceType.name":"Published report","testSystem.id":null,"testSystem.name":null,"testSystem.sortOrder":null,"testSystem.conceptId":null,"testSystem.categoryId":null,"testSystem.category.id":null,"testSystem.category.name":null,"testSystem.category.sortOrder":null,"testSystem.category.requiresCytochromeB5":null,"cytochromeB5.id":null,"cytochromeB5.name":null,"cytochromeB5.sortOrder":null,"cytochromeB5.conceptId":null,"controlDataExperiment.id":null,"controlDataExperiment.uid":null,"controlDataExperiment.name":null,"controlDataExperiment.overallEffect":null,"controlDataExperiment.isControlData":null,"controlDataExperiment.isIc50Shift":null,"controlDataExperiment.croCutoff":null,"controlDataExperiment.croIdentifier":null,"controlDataExperiment.comment":null,"controlDataExperiment.experimentalConditionsComment":null,"controlDataExperiment.resultsComment":null,"controlDataExperiment.internalComment":null,"controlDataExperiment.objectCompoundId":null,"controlDataExperiment.objectMetaboliteCompoundId":null,"controlDataExperiment.precipitantCompoundId":null,"controlDataExperiment.cytochromeB5Id":null,"controlDataExperiment.studyId":null,"controlDataExperiment.experimentTypeId":null,"controlDataExperiment.testSystemId":null,"controlDataExperiment.ic50ShiftExperimentId":null,"controlDataExperiment.controlDataExperimentId":null,"controlDataExperiment.controlDataForExperimentId":null,"controlDataExperiment.naturalProductSampleId":null,"controlDataExperiment.experimentType.id":null,"controlDataExperiment.experimentType.name":null,"controlDataExperiment.experimentType.isInVitro":null,"controlDataExperiment.experimentType.isTransporter":null,"controlDataExperiment.experimentType.isEnzyme":null,"controlDataExperiment.experimentType.purl":null,"controlDataExperiment.objectCompound.id":null,"controlDataExperiment.objectCompound.name":null,"controlDataExperiment.objectCompound.unii":null,"controlDataExperiment.objectCompound.inChIKey":null,"controlDataExperiment.objectCompound.publicDescription":null,"controlDataExperiment.objectCompound.internalComment":null,"controlDataExperiment.objectCompound.conceptId":null,"controlDataExperiment.objectCompound.enantiomerOfId":null,"controlDataExperiment.precipitantCompound.id":null,"controlDataExperiment.precipitantCompound.name":null,"controlDataExperiment.precipitantCompound.unii":null,"controlDataExperiment.precipitantCompound.inChIKey":null,"controlDataExperiment.precipitantCompound.publicDescription":null,"controlDataExperiment.precipitantCompound.internalComment":null,"controlDataExperiment.precipitantCompound.conceptId":null,"controlDataExperiment.precipitantCompound.enantiomerOfId":null,"controlDataExperiment.objectMetaboliteCompound.id":null,"controlDataExperiment.objectMetaboliteCompound.name":null,"controlDataExperiment.objectMetaboliteCompound.unii":null,"controlDataExperiment.objectMetaboliteCompound.inChIKey":null,"controlDataExperiment.objectMetaboliteCompound.publicDescriptio":null,"controlDataExperiment.objectMetaboliteCompound.internalComment":null,"controlDataExperiment.objectMetaboliteCompound.conceptId":null,"controlDataExperiment.objectMetaboliteCompound.enantiomerOfId":null,"controlDataExperiment.enzymes.id":null,"controlDataExperiment.enzymes.name":null,"controlDataExperiment.enzymes.conceptId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.enzymeId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.experiment":null,"controlDataExperiment.transporters.id":null,"controlDataExperiment.transporters.name":null,"controlDataExperiment.transporters.conceptId":null,"controlDataExperiment.transporters.experiment_transporter_xref.":null,"controlDataExperiment.quantifiedMetabolites.id":null,"controlDataExperiment.quantifiedMetabolites.name":null,"controlDataExperiment.quantifiedMetabolites.unii":null,"controlDataExperiment.quantifiedMetabolites.inChIKey":null,"controlDataExperiment.quantifiedMetabolites.publicDescription":null,"controlDataExperiment.quantifiedMetabolites.internalComment":null,"controlDataExperiment.quantifiedMetabolites.conceptId":null,"controlDataExperiment.quantifiedMetabolites.enantiomerOfId":null,"controlDataExperiment.quantifiedMetabolites.experiment_quantifi":null,"experimentAnswers.id":7012,"experimentAnswers.text":"12","experimentAnswers.answerId":null,"experimentAnswers.experimentId":297,"experimentAnswers.questionId":106,"experimentAnswers.question.id":106,"experimentAnswers.question.text":"Number of subjects","experimentAnswers.question.required":true,"experimentAnswers.question.maxAnswers":null,"experimentAnswers.question.type":"STRING","experimentAnswers.question.conceptId":null,"experimentAnswers.question.answers.id":null,"experimentAnswers.question.answers.text":null,"experimentAnswers.question.answers.sortOrder":null,"experimentAnswers.question.answers.conceptId":null,"experimentAnswers.question.answers.questionId":null,"experimentAnswers.answer.id":null,"experimentAnswers.answer.text":null,"experimentAnswers.answer.sortOrder":null,"experimentAnswers.answer.conceptId":null,"experimentAnswers.answer.questionId":null},{"id":297,"uid":"NPDI-Bi2fGw","name":"CYP3A4 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Interaction","experimentType.isInVitro":false,"experimentType.isTransporter":false,"experimentType.isEnzyme":false,"experimentType.purl":"http://purl.obolibrary.org/obo/DIDEO_00000071","objectCompound.id":26,"objectCompound.name":"midazolam","objectCompound.unii":"R60L0SM5BC","objectCompound.inChIKey":"DDLIGBOFAVUZHB-UHFFFAOYSA-N","objectCompound.publicDescription":null,"objectCompound.internalComment":null,"objectCompound.conceptId":708298,"objectCompound.enantiomerOfId":null,"objectCompound.concept.conceptId":708298,"objectCompound.concept.conceptName":"Midazolam","objectCompound.concept.domainId":"Drug","objectCompound.concept.vocabularyId":"RxNorm","objectCompound.concept.conceptClassId":"Ingredient","objectCompound.concept.standardConcept":"S","objectCompound.concept.conceptCode":"6960","objectCompound.concept.validStartDate":"1970-01-01T00:00:00.000Z","objectCompound.concept.validEndDate":"2099-12-31T00:00:00.000Z","objectCompound.concept.invalid_reason":null,"precipitantCompound.id":127,"precipitantCompound.name":"goldenseal root extract","precipitantCompound.unii":null,"precipitantCompound.inChIKey":null,"precipitantCompound.publicDescription":null,"precipitantCompound.internalComment":null,"precipitantCompound.conceptId":null,"precipitantCompound.enantiomerOfId":null,"precipitantCompound.concept.conceptId":null,"precipitantCompound.concept.conceptName":null,"precipitantCompound.concept.domainId":null,"precipitantCompound.concept.vocabularyId":null,"precipitantCompound.concept.conceptClassId":null,"precipitantCompound.concept.standardConcept":null,"precipitantCompound.concept.conceptCode":null,"precipitantCompound.concept.validStartDate":null,"precipitantCompound.concept.validEndDate":null,"precipitantCompound.concept.invalid_reason":null,"objectMetaboliteCompound.id":null,"objectMetaboliteCompound.name":null,"objectMetaboliteCompound.unii":null,"objectMetaboliteCompound.inChIKey":null,"objectMetaboliteCompound.publicDescription":null,"objectMetaboliteCompound.internalComment":null,"objectMetaboliteCompound.conceptId":null,"objectMetaboliteCompound.enantiomerOfId":null,"objectMetaboliteCompound.concept.conceptId":null,"objectMetaboliteCompound.concept.conceptName":null,"objectMetaboliteCompound.concept.domainId":null,"objectMetaboliteCompound.concept.vocabularyId":null,"objectMetaboliteCompound.concept.conceptClassId":null,"objectMetaboliteCompound.concept.standardConcept":null,"objectMetaboliteCompound.concept.conceptCode":null,"objectMetaboliteCompound.concept.validStartDate":null,"objectMetaboliteCompound.concept.validEndDate":null,"objectMetaboliteCompound.concept.invalid_reason":null,"enzymes.id":13,"enzymes.name":"CYP3A4","enzymes.conceptId":4306811,"enzymes.experiment_enzyme_xref.enzymeId":13,"enzymes.experiment_enzyme_xref.experimentId":297,"transporters.id":null,"transporters.name":null,"transporters.conceptId":null,"transporters.experiment_transporter_xref.experimentId":null,"transporters.experiment_transporter_xref.transporterId":null,"quantifiedMetabolites.id":null,"quantifiedMetabolites.name":null,"quantifiedMetabolites.unii":null,"quantifiedMetabolites.inChIKey":null,"quantifiedMetabolites.publicDescription":null,"quantifiedMetabolites.internalComment":null,"quantifiedMetabolites.conceptId":null,"quantifiedMetabolites.enantiomerOfId":null,"quantifiedMetabolites.experiment_quantified_metabolite_xref.com":null,"quantifiedMetabolites.experiment_quantified_metabolite_xref.exp":null,"study.id":73,"study.uid":"NPDI-ftEv0g","study.name":"In vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis 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class=\"page\" title=\"Page 3\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>(6 females) (age, mean ± SD = 24 ± 3.0 years; weight, 69.3 ± 14.2 kg)<br />Did not use botanical dietary supplements or non-prescription/prescription medications aside from oral contraception in the female group, which they continued.<br />All females had a negative prenancy test at baseline</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","experimentAnswers.answerId":null,"experimentAnswers.experimentId":297,"experimentAnswers.questionId":107,"experimentAnswers.question.id":107,"experimentAnswers.question.text":"Population additional 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. 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route","experimentAnswers.question.required":true,"experimentAnswers.question.maxAnswers":1,"experimentAnswers.question.type":null,"experimentAnswers.question.conceptId":null,"experimentAnswers.question.answers.id":604,"experimentAnswers.question.answers.text":"Inhalation","experimentAnswers.question.answers.sortOrder":null,"experimentAnswers.question.answers.conceptId":null,"experimentAnswers.question.answers.questionId":108,"experimentAnswers.answer.id":600,"experimentAnswers.answer.text":"Oral","experimentAnswers.answer.sortOrder":null,"experimentAnswers.answer.conceptId":null,"experimentAnswers.answer.questionId":108},{"id":297,"uid":"NPDI-Bi2fGw","name":"CYP3A4 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Interaction","experimentType.isInVitro":false,"experimentType.isTransporter":false,"experimentType.isEnzyme":false,"experimentType.purl":"http://purl.obolibrary.org/obo/DIDEO_00000071","objectCompound.id":26,"objectCompound.name":"midazolam","objectCompound.unii":"R60L0SM5BC","objectCompound.inChIKey":"DDLIGBOFAVUZHB-UHFFFAOYSA-N","objectCompound.publicDescription":null,"objectCompound.internalComment":null,"objectCompound.conceptId":708298,"objectCompound.enantiomerOfId":null,"objectCompound.concept.conceptId":708298,"objectCompound.concept.conceptName":"Midazolam","objectCompound.concept.domainId":"Drug","objectCompound.concept.vocabularyId":"RxNorm","objectCompound.concept.conceptClassId":"Ingredient","objectCompound.concept.standardConcept":"S","objectCompound.concept.conceptCode":"6960","objectCompound.concept.validStartDate":"1970-01-01T00:00:00.000Z","objectCompound.concept.validEndDate":"2099-12-31T00:00:00.000Z","objectCompound.concept.invalid_reason":null,"precipitantCompound.id":127,"precipitantCompound.name":"goldenseal root 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis canadensis","study.naturalProduct.name":"Goldenseal","study.naturalProduct.itis":null,"study.naturalProduct.srs":"66690655-f406-4d67-96e3-2066aafee8d5","study.naturalProduct.source_id":"","study.naturalProduct.conceptId":null,"study.naturalProduct.concept.conceptId":null,"study.naturalProduct.concept.conceptName":null,"study.naturalProduct.concept.domainId":null,"study.naturalProduct.concept.vocabularyId":null,"study.naturalProduct.concept.conceptClassId":null,"study.naturalProduct.concept.standardConcept":null,"study.naturalProduct.concept.conceptCode":null,"study.naturalProduct.concept.validStartDate":null,"study.naturalProduct.concept.validEndDate":null,"study.naturalProduct.concept.invalid_reason":null,"study.compound.id":null,"study.compound.name":null,"study.compound.unii":null,"study.compound.inChIKey":null,"study.compound.publicDescription":null,"study.compound.internalComment":null,"study.compound.conceptId":null,"study.compound.enantiomerOfId":null,"study.studySourceType.id":1,"study.studySourceType.name":"Published 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route","experimentAnswers.question.required":true,"experimentAnswers.question.maxAnswers":1,"experimentAnswers.question.type":null,"experimentAnswers.question.conceptId":null,"experimentAnswers.question.answers.id":603,"experimentAnswers.question.answers.text":"Intramuscular","experimentAnswers.question.answers.sortOrder":null,"experimentAnswers.question.answers.conceptId":null,"experimentAnswers.question.answers.questionId":108,"experimentAnswers.answer.id":600,"experimentAnswers.answer.text":"Oral","experimentAnswers.answer.sortOrder":null,"experimentAnswers.answer.conceptId":null,"experimentAnswers.answer.questionId":108},{"id":297,"uid":"NPDI-Bi2fGw","name":"CYP3A4 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Interaction","experimentType.isInVitro":false,"experimentType.isTransporter":false,"experimentType.isEnzyme":false,"experimentType.purl":"http://purl.obolibrary.org/obo/DIDEO_00000071","objectCompound.id":26,"objectCompound.name":"midazolam","objectCompound.unii":"R60L0SM5BC","objectCompound.inChIKey":"DDLIGBOFAVUZHB-UHFFFAOYSA-N","objectCompound.publicDescription":null,"objectCompound.internalComment":null,"objectCompound.conceptId":708298,"objectCompound.enantiomerOfId":null,"objectCompound.concept.conceptId":708298,"objectCompound.concept.conceptName":"Midazolam","objectCompound.concept.domainId":"Drug","objectCompound.concept.vocabularyId":"RxNorm","objectCompound.concept.conceptClassId":"Ingredient","objectCompound.concept.standardConcept":"S","objectCompound.concept.conceptCode":"6960","objectCompound.concept.validStartDate":"1970-01-01T00:00:00.000Z","objectCompound.concept.validEndDate":"2099-12-31T00:00:00.000Z","objectCompound.concept.invalid_reason":null,"precipitantCompound.id":127,"precipitantCompound.name":"goldenseal 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis canadensis","study.naturalProduct.name":"Goldenseal","study.naturalProduct.itis":null,"study.naturalProduct.srs":"66690655-f406-4d67-96e3-2066aafee8d5","study.naturalProduct.source_id":"","study.naturalProduct.conceptId":null,"study.naturalProduct.concept.conceptId":null,"study.naturalProduct.concept.conceptName":null,"study.naturalProduct.concept.domainId":null,"study.naturalProduct.concept.vocabularyId":null,"study.naturalProduct.concept.conceptClassId":null,"study.naturalProduct.concept.standardConcept":null,"study.naturalProduct.concept.conceptCode":null,"study.naturalProduct.concept.validStartDate":null,"study.naturalProduct.concept.validEndDate":null,"study.naturalProduct.concept.invalid_reason":null,"study.compound.id":null,"study.compound.name":null,"study.compound.unii":null,"study.compound.inChIKey":null,"study.compound.publicDescription":null,"study.compound.internalComment":null,"study.compound.conceptId":null,"study.compound.enantiomerOfId":null,"study.studySourceType.id":1,"study.studySourceType.name":"Published report","testSystem.id":null,"testSystem.name":null,"testSystem.sortOrder":null,"testSystem.conceptId":null,"testSystem.categoryId":null,"testSystem.category.id":null,"testSystem.category.name":null,"testSystem.category.sortOrder":null,"testSystem.category.requiresCytochromeB5":null,"cytochromeB5.id":null,"cytochromeB5.name":null,"cytochromeB5.sortOrder":null,"cytochromeB5.conceptId":null,"controlDataExperiment.id":null,"controlDataExperiment.uid":null,"controlDataExperiment.name":null,"controlDataExperiment.overallEffect":null,"controlDataExperiment.isControlData":null,"controlDataExperiment.isIc50Shift":null,"controlDataExperiment.croCutoff":null,"controlDataExperiment.croIdentifier":null,"controlDataExperiment.comment":null,"controlDataExperiment.experimentalConditionsComment":null,"controlDataExperiment.resultsComment":null,"controlDataExperiment.internalComment":null,"controlDataExperiment.objectCompoundId":null,"controlDataExperiment.objectMetaboliteCompoundId":null,"controlDataExperiment.precipitantCompoundId":null,"controlDataExperiment.cytochromeB5Id":null,"controlDataExperiment.studyId":null,"controlDataExperiment.experimentTypeId":null,"controlDataExperiment.testSystemId":null,"controlDataExperiment.ic50ShiftExperimentId":null,"controlDataExperiment.controlDataExperimentId":null,"controlDataExperiment.controlDataForExperimentId":null,"controlDataExperiment.naturalProductSampleId":null,"controlDataExperiment.experimentType.id":null,"controlDataExperiment.experimentType.name":null,"controlDataExperiment.experimentType.isInVitro":null,"controlDataExperiment.experimentType.isTransporter":null,"controlDataExperiment.experimentType.isEnzyme":null,"controlDataExperiment.experimentType.purl":null,"controlDataExperiment.objectCompound.id":null,"controlDataExperiment.objectCompound.name":null,"controlDataExperiment.objectCompound.unii":null,"controlDataExperiment.objectCompound.inChIKey":null,"controlDataExperiment.objectCompound.publicDescription":null,"controlDataExperiment.objectCompound.internalComment":null,"controlDataExperiment.objectCompound.conceptId":null,"controlDataExperiment.objectCompound.enantiomerOfId":null,"controlDataExperiment.precipitantCompound.id":null,"controlDataExperiment.precipitantCompound.name":null,"controlDataExperiment.precipitantCompound.unii":null,"controlDataExperiment.precipitantCompound.inChIKey":null,"controlDataExperiment.precipitantCompound.publicDescription":null,"controlDataExperiment.precipitantCompound.internalComment":null,"controlDataExperiment.precipitantCompound.conceptId":null,"controlDataExperiment.precipitantCompound.enantiomerOfId":null,"controlDataExperiment.objectMetaboliteCompound.id":null,"controlDataExperiment.objectMetaboliteCompound.name":null,"controlDataExperiment.objectMetaboliteCompound.unii":null,"controlDataExperiment.objectMetaboliteCompound.inChIKey":null,"controlDataExperiment.objectMetaboliteCompound.publicDescriptio":null,"controlDataExperiment.objectMetaboliteCompound.internalComment":null,"controlDataExperiment.objectMetaboliteCompound.conceptId":null,"controlDataExperiment.objectMetaboliteCompound.enantiomerOfId":null,"controlDataExperiment.enzymes.id":null,"controlDataExperiment.enzymes.name":null,"controlDataExperiment.enzymes.conceptId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.enzymeId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.experiment":null,"controlDataExperiment.transporters.id":null,"controlDataExperiment.transporters.name":null,"controlDataExperiment.transporters.conceptId":null,"controlDataExperiment.transporters.experiment_transporter_xref.":null,"controlDataExperiment.quantifiedMetabolites.id":null,"controlDataExperiment.quantifiedMetabolites.name":null,"controlDataExperiment.quantifiedMetabolites.unii":null,"controlDataExperiment.quantifiedMetabolites.inChIKey":null,"controlDataExperiment.quantifiedMetabolites.publicDescription":null,"controlDataExperiment.quantifiedMetabolites.internalComment":null,"controlDataExperiment.quantifiedMetabolites.conceptId":null,"controlDataExperiment.quantifiedMetabolites.enantiomerOfId":null,"controlDataExperiment.quantifiedMetabolites.experiment_quantifi":null,"experimentAnswers.id":7041,"experimentAnswers.text":null,"experimentAnswers.answerId":600,"experimentAnswers.experimentId":297,"experimentAnswers.questionId":108,"experimentAnswers.question.id":108,"experimentAnswers.question.text":"Administration route","experimentAnswers.question.required":true,"experimentAnswers.question.maxAnswers":1,"experimentAnswers.question.type":null,"experimentAnswers.question.conceptId":null,"experimentAnswers.question.answers.id":601,"experimentAnswers.question.answers.text":"Intravenous","experimentAnswers.question.answers.sortOrder":null,"experimentAnswers.question.answers.conceptId":null,"experimentAnswers.question.answers.questionId":108,"experimentAnswers.answer.id":600,"experimentAnswers.answer.text":"Oral","experimentAnswers.answer.sortOrder":null,"experimentAnswers.answer.conceptId":null,"experimentAnswers.answer.questionId":108},{"id":297,"uid":"NPDI-Bi2fGw","name":"CYP3A4 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Interaction","experimentType.isInVitro":false,"experimentType.isTransporter":false,"experimentType.isEnzyme":false,"experimentType.purl":"http://purl.obolibrary.org/obo/DIDEO_00000071","objectCompound.id":26,"objectCompound.name":"midazolam","objectCompound.unii":"R60L0SM5BC","objectCompound.inChIKey":"DDLIGBOFAVUZHB-UHFFFAOYSA-N","objectCompound.publicDescription":null,"objectCompound.internalComment":null,"objectCompound.conceptId":708298,"objectCompound.enantiomerOfId":null,"objectCompound.concept.conceptId":708298,"objectCompound.concept.conceptName":"Midazolam","objectCompound.concept.domainId":"Drug","objectCompound.concept.vocabularyId":"RxNorm","objectCompound.concept.conceptClassId":"Ingredient","objectCompound.concept.standardConcept":"S","objectCompound.concept.conceptCode":"6960","objectCompound.concept.validStartDate":"1970-01-01T00:00:00.000Z","objectCompound.concept.validEndDate":"2099-12-31T00:00:00.000Z","objectCompound.concept.invalid_reason":null,"precipitantCompound.id":127,"precipitantCompound.name":"goldenseal 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis 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Interaction","experimentType.isInVitro":false,"experimentType.isTransporter":false,"experimentType.isEnzyme":false,"experimentType.purl":"http://purl.obolibrary.org/obo/DIDEO_00000071","objectCompound.id":26,"objectCompound.name":"midazolam","objectCompound.unii":"R60L0SM5BC","objectCompound.inChIKey":"DDLIGBOFAVUZHB-UHFFFAOYSA-N","objectCompound.publicDescription":null,"objectCompound.internalComment":null,"objectCompound.conceptId":708298,"objectCompound.enantiomerOfId":null,"objectCompound.concept.conceptId":708298,"objectCompound.concept.conceptName":"Midazolam","objectCompound.concept.domainId":"Drug","objectCompound.concept.vocabularyId":"RxNorm","objectCompound.concept.conceptClassId":"Ingredient","objectCompound.concept.standardConcept":"S","objectCompound.concept.conceptCode":"6960","objectCompound.concept.validStartDate":"1970-01-01T00:00:00.000Z","objectCompound.concept.validEndDate":"2099-12-31T00:00:00.000Z","objectCompound.concept.invalid_reason":null,"precipitantCompound.id":127,"precipitantCompound.name":"goldenseal 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis canadensis","study.naturalProduct.name":"Goldenseal","study.naturalProduct.itis":null,"study.naturalProduct.srs":"66690655-f406-4d67-96e3-2066aafee8d5","study.naturalProduct.source_id":"","study.naturalProduct.conceptId":null,"study.naturalProduct.concept.conceptId":null,"study.naturalProduct.concept.conceptName":null,"study.naturalProduct.concept.domainId":null,"study.naturalProduct.concept.vocabularyId":null,"study.naturalProduct.concept.conceptClassId":null,"study.naturalProduct.concept.standardConcept":null,"study.naturalProduct.concept.conceptCode":null,"study.naturalProduct.concept.validStartDate":null,"study.naturalProduct.concept.validEndDate":null,"study.naturalProduct.concept.invalid_reason":null,"study.compound.id":null,"study.compound.name":null,"study.compound.unii":null,"study.compound.inChIKey":null,"study.compound.publicDescription":null,"study.compound.internalComment":null,"study.compound.conceptId":null,"study.compound.enantiomerOfId":null,"study.studySourceType.id":1,"study.studySourceType.name":"Published report","testSystem.id":null,"testSystem.name":null,"testSystem.sortOrder":null,"testSystem.conceptId":null,"testSystem.categoryId":null,"testSystem.category.id":null,"testSystem.category.name":null,"testSystem.category.sortOrder":null,"testSystem.category.requiresCytochromeB5":null,"cytochromeB5.id":null,"cytochromeB5.name":null,"cytochromeB5.sortOrder":null,"cytochromeB5.conceptId":null,"controlDataExperiment.id":null,"controlDataExperiment.uid":null,"controlDataExperiment.name":null,"controlDataExperiment.overallEffect":null,"controlDataExperiment.isControlData":null,"controlDataExperiment.isIc50Shift":null,"controlDataExperiment.croCutoff":null,"controlDataExperiment.croIdentifier":null,"controlDataExperiment.comment":null,"controlDataExperiment.experimentalConditionsComment":null,"controlDataExperiment.resultsComment":null,"controlDataExperiment.internalComment":null,"controlDataExperiment.objectCompoundId":null,"controlDataExperiment.objectMetaboliteCompoundId":null,"controlDataExperiment.precipitantCompoundId":null,"controlDataExperiment.cytochromeB5Id":null,"controlDataExperiment.studyId":null,"controlDataExperiment.experimentTypeId":null,"controlDataExperiment.testSystemId":null,"controlDataExperiment.ic50ShiftExperimentId":null,"controlDataExperiment.controlDataExperimentId":null,"controlDataExperiment.controlDataForExperimentId":null,"controlDataExperiment.naturalProductSampleId":null,"controlDataExperiment.experimentType.id":null,"controlDataExperiment.experimentType.name":null,"controlDataExperiment.experimentType.isInVitro":null,"controlDataExperiment.experimentType.isTransporter":null,"controlDataExperiment.experimentType.isEnzyme":null,"controlDataExperiment.experimentType.purl":null,"controlDataExperiment.objectCompound.id":null,"controlDataExperiment.objectCompound.name":null,"controlDataExperiment.objectCompound.unii":null,"controlDataExperiment.objectCompound.inChIKey":null,"controlDataExperiment.objectCompound.publicDescription":null,"controlDataExperiment.objectCompound.internalComment":null,"controlDataExperiment.objectCompound.conceptId":null,"controlDataExperiment.objectCompound.enantiomerOfId":null,"controlDataExperiment.precipitantCompound.id":null,"controlDataExperiment.precipitantCompound.name":null,"controlDataExperiment.precipitantCompound.unii":null,"controlDataExperiment.precipitantCompound.inChIKey":null,"controlDataExperiment.precipitantCompound.publicDescription":null,"controlDataExperiment.precipitantCompound.internalComment":null,"controlDataExperiment.precipitantCompound.conceptId":null,"controlDataExperiment.precipitantCompound.enantiomerOfId":null,"controlDataExperiment.objectMetaboliteCompound.id":null,"controlDataExperiment.objectMetaboliteCompound.name":null,"controlDataExperiment.objectMetaboliteCompound.unii":null,"controlDataExperiment.objectMetaboliteCompound.inChIKey":null,"controlDataExperiment.objectMetaboliteCompound.publicDescriptio":null,"controlDataExperiment.objectMetaboliteCompound.internalComment":null,"controlDataExperiment.objectMetaboliteCompound.conceptId":null,"controlDataExperiment.objectMetaboliteCompound.enantiomerOfId":null,"controlDataExperiment.enzymes.id":null,"controlDataExperiment.enzymes.name":null,"controlDataExperiment.enzymes.conceptId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.enzymeId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.experiment":null,"controlDataExperiment.transporters.id":null,"controlDataExperiment.transporters.name":null,"controlDataExperiment.transporters.conceptId":null,"controlDataExperiment.transporters.experiment_transporter_xref.":null,"controlDataExperiment.quantifiedMetabolites.id":null,"controlDataExperiment.quantifiedMetabolites.name":null,"controlDataExperiment.quantifiedMetabolites.unii":null,"controlDataExperiment.quantifiedMetabolites.inChIKey":null,"controlDataExperiment.quantifiedMetabolites.publicDescription":null,"controlDataExperiment.quantifiedMetabolites.internalComment":null,"controlDataExperiment.quantifiedMetabolites.conceptId":null,"controlDataExperiment.quantifiedMetabolites.enantiomerOfId":null,"controlDataExperiment.quantifiedMetabolites.experiment_quantifi":null,"experimentAnswers.id":7043,"experimentAnswers.text":"not 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Interaction","experimentType.isInVitro":false,"experimentType.isTransporter":false,"experimentType.isEnzyme":false,"experimentType.purl":"http://purl.obolibrary.org/obo/DIDEO_00000071","objectCompound.id":26,"objectCompound.name":"midazolam","objectCompound.unii":"R60L0SM5BC","objectCompound.inChIKey":"DDLIGBOFAVUZHB-UHFFFAOYSA-N","objectCompound.publicDescription":null,"objectCompound.internalComment":null,"objectCompound.conceptId":708298,"objectCompound.enantiomerOfId":null,"objectCompound.concept.conceptId":708298,"objectCompound.concept.conceptName":"Midazolam","objectCompound.concept.domainId":"Drug","objectCompound.concept.vocabularyId":"RxNorm","objectCompound.concept.conceptClassId":"Ingredient","objectCompound.concept.standardConcept":"S","objectCompound.concept.conceptCode":"6960","objectCompound.concept.validStartDate":"1970-01-01T00:00:00.000Z","objectCompound.concept.validEndDate":"2099-12-31T00:00:00.000Z","objectCompound.concept.invalid_reason":null,"precipitantCompound.id":127,"precipitantCompound.name":"goldenseal 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extract","precipitantCompound.unii":null,"precipitantCompound.inChIKey":null,"precipitantCompound.publicDescription":null,"precipitantCompound.internalComment":null,"precipitantCompound.conceptId":null,"precipitantCompound.enantiomerOfId":null,"precipitantCompound.concept.conceptId":null,"precipitantCompound.concept.conceptName":null,"precipitantCompound.concept.domainId":null,"precipitantCompound.concept.vocabularyId":null,"precipitantCompound.concept.conceptClassId":null,"precipitantCompound.concept.standardConcept":null,"precipitantCompound.concept.conceptCode":null,"precipitantCompound.concept.validStartDate":null,"precipitantCompound.concept.validEndDate":null,"precipitantCompound.concept.invalid_reason":null,"objectMetaboliteCompound.id":null,"objectMetaboliteCompound.name":null,"objectMetaboliteCompound.unii":null,"objectMetaboliteCompound.inChIKey":null,"objectMetaboliteCompound.publicDescription":null,"objectMetaboliteCompound.internalComment":null,"objectMetaboliteCompound.conceptId":null,"objectMetaboliteCompound.enantiomerOfId":null,"objectMetaboliteCompound.concept.conceptId":null,"objectMetaboliteCompound.concept.conceptName":null,"objectMetaboliteCompound.concept.domainId":null,"objectMetaboliteCompound.concept.vocabularyId":null,"objectMetaboliteCompound.concept.conceptClassId":null,"objectMetaboliteCompound.concept.standardConcept":null,"objectMetaboliteCompound.concept.conceptCode":null,"objectMetaboliteCompound.concept.validStartDate":null,"objectMetaboliteCompound.concept.validEndDate":null,"objectMetaboliteCompound.concept.invalid_reason":null,"enzymes.id":13,"enzymes.name":"CYP3A4","enzymes.conceptId":4306811,"enzymes.experiment_enzyme_xref.enzymeId":13,"enzymes.experiment_enzyme_xref.experimentId":297,"transporters.id":null,"transporters.name":null,"transporters.conceptId":null,"transporters.experiment_transporter_xref.experimentId":null,"transporters.experiment_transporter_xref.transporterId":null,"quantifiedMetabolites.id":null,"quantifiedMetabolites.name":null,"quantifiedMetabolites.unii":null,"quantifiedMetabolites.inChIKey":null,"quantifiedMetabolites.publicDescription":null,"quantifiedMetabolites.internalComment":null,"quantifiedMetabolites.conceptId":null,"quantifiedMetabolites.enantiomerOfId":null,"quantifiedMetabolites.experiment_quantified_metabolite_xref.com":null,"quantifiedMetabolites.experiment_quantified_metabolite_xref.exp":null,"study.id":73,"study.uid":"NPDI-ftEv0g","study.name":"In vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis canadensis","study.naturalProduct.name":"Goldenseal","study.naturalProduct.itis":null,"study.naturalProduct.srs":"66690655-f406-4d67-96e3-2066aafee8d5","study.naturalProduct.source_id":"","study.naturalProduct.conceptId":null,"study.naturalProduct.concept.conceptId":null,"study.naturalProduct.concept.conceptName":null,"study.naturalProduct.concept.domainId":null,"study.naturalProduct.concept.vocabularyId":null,"study.naturalProduct.concept.conceptClassId":null,"study.naturalProduct.concept.standardConcept":null,"study.naturalProduct.concept.conceptCode":null,"study.naturalProduct.concept.validStartDate":null,"study.naturalProduct.concept.validEndDate":null,"study.naturalProduct.concept.invalid_reason":null,"study.compound.id":null,"study.compound.name":null,"study.compound.unii":null,"study.compound.inChIKey":null,"study.compound.publicDescription":null,"study.compound.internalComment":null,"study.compound.conceptId":null,"study.compound.enantiomerOfId":null,"study.studySourceType.id":1,"study.studySourceType.name":"Published report","testSystem.id":null,"testSystem.name":null,"testSystem.sortOrder":null,"testSystem.conceptId":null,"testSystem.categoryId":null,"testSystem.category.id":null,"testSystem.category.name":null,"testSystem.category.sortOrder":null,"testSystem.category.requiresCytochromeB5":null,"cytochromeB5.id":null,"cytochromeB5.name":null,"cytochromeB5.sortOrder":null,"cytochromeB5.conceptId":null,"controlDataExperiment.id":null,"controlDataExperiment.uid":null,"controlDataExperiment.name":null,"controlDataExperiment.overallEffect":null,"controlDataExperiment.isControlData":null,"controlDataExperiment.isIc50Shift":null,"controlDataExperiment.croCutoff":null,"controlDataExperiment.croIdentifier":null,"controlDataExperiment.comment":null,"controlDataExperiment.experimentalConditionsComment":null,"controlDataExperiment.resultsComment":null,"controlDataExperiment.internalComment":null,"controlDataExperiment.objectCompoundId":null,"controlDataExperiment.objectMetaboliteCompoundId":null,"controlDataExperiment.precipitantCompoundId":null,"controlDataExperiment.cytochromeB5Id":null,"controlDataExperiment.studyId":null,"controlDataExperiment.experimentTypeId":null,"controlDataExperiment.testSystemId":null,"controlDataExperiment.ic50ShiftExperimentId":null,"controlDataExperiment.controlDataExperimentId":null,"controlDataExperiment.controlDataForExperimentId":null,"controlDataExperiment.naturalProductSampleId":null,"controlDataExperiment.experimentType.id":null,"controlDataExperiment.experimentType.name":null,"controlDataExperiment.experimentType.isInVitro":null,"controlDataExperiment.experimentType.isTransporter":null,"controlDataExperiment.experimentType.isEnzyme":null,"controlDataExperiment.experimentType.purl":null,"controlDataExperiment.objectCompound.id":null,"controlDataExperiment.objectCompound.name":null,"controlDataExperiment.objectCompound.unii":null,"controlDataExperiment.objectCompound.inChIKey":null,"controlDataExperiment.objectCompound.publicDescription":null,"controlDataExperiment.objectCompound.internalComment":null,"controlDataExperiment.objectCompound.conceptId":null,"controlDataExperiment.objectCompound.enantiomerOfId":null,"controlDataExperiment.precipitantCompound.id":null,"controlDataExperiment.precipitantCompound.name":null,"controlDataExperiment.precipitantCompound.unii":null,"controlDataExperiment.precipitantCompound.inChIKey":null,"controlDataExperiment.precipitantCompound.publicDescription":null,"controlDataExperiment.precipitantCompound.internalComment":null,"controlDataExperiment.precipitantCompound.conceptId":null,"controlDataExperiment.precipitantCompound.enantiomerOfId":null,"controlDataExperiment.objectMetaboliteCompound.id":null,"controlDataExperiment.objectMetaboliteCompound.name":null,"controlDataExperiment.objectMetaboliteCompound.unii":null,"controlDataExperiment.objectMetaboliteCompound.inChIKey":null,"controlDataExperiment.objectMetaboliteCompound.publicDescriptio":null,"controlDataExperiment.objectMetaboliteCompound.internalComment":null,"controlDataExperiment.objectMetaboliteCompound.conceptId":null,"controlDataExperiment.objectMetaboliteCompound.enantiomerOfId":null,"controlDataExperiment.enzymes.id":null,"controlDataExperiment.enzymes.name":null,"controlDataExperiment.enzymes.conceptId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.enzymeId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.experiment":null,"controlDataExperiment.transporters.id":null,"controlDataExperiment.transporters.name":null,"controlDataExperiment.transporters.conceptId":null,"controlDataExperiment.transporters.experiment_transporter_xref.":null,"controlDataExperiment.quantifiedMetabolites.id":null,"controlDataExperiment.quantifiedMetabolites.name":null,"controlDataExperiment.quantifiedMetabolites.unii":null,"controlDataExperiment.quantifiedMetabolites.inChIKey":null,"controlDataExperiment.quantifiedMetabolites.publicDescription":null,"controlDataExperiment.quantifiedMetabolites.internalComment":null,"controlDataExperiment.quantifiedMetabolites.conceptId":null,"controlDataExperiment.quantifiedMetabolites.enantiomerOfId":null,"controlDataExperiment.quantifiedMetabolites.experiment_quantifi":null,"experimentAnswers.id":7052,"experimentAnswers.text":"once","experimentAnswers.answerId":null,"experimentAnswers.experimentId":297,"experimentAnswers.questionId":111,"experimentAnswers.question.id":111,"experimentAnswers.question.text":"Interval/frequency","experimentAnswers.question.required":false,"experimentAnswers.question.maxAnswers":null,"experimentAnswers.question.type":"STRING","experimentAnswers.question.conceptId":null,"experimentAnswers.question.answers.id":null,"experimentAnswers.question.answers.text":null,"experimentAnswers.question.answers.sortOrder":null,"experimentAnswers.question.answers.conceptId":null,"experimentAnswers.question.answers.questionId":null,"experimentAnswers.answer.id":null,"experimentAnswers.answer.text":null,"experimentAnswers.answer.sortOrder":null,"experimentAnswers.answer.conceptId":null,"experimentAnswers.answer.questionId":null},{"id":297,"uid":"NPDI-Bi2fGw","name":"CYP3A4 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Interaction","experimentType.isInVitro":false,"experimentType.isTransporter":false,"experimentType.isEnzyme":false,"experimentType.purl":"http://purl.obolibrary.org/obo/DIDEO_00000071","objectCompound.id":26,"objectCompound.name":"midazolam","objectCompound.unii":"R60L0SM5BC","objectCompound.inChIKey":"DDLIGBOFAVUZHB-UHFFFAOYSA-N","objectCompound.publicDescription":null,"objectCompound.internalComment":null,"objectCompound.conceptId":708298,"objectCompound.enantiomerOfId":null,"objectCompound.concept.conceptId":708298,"objectCompound.concept.conceptName":"Midazolam","objectCompound.concept.domainId":"Drug","objectCompound.concept.vocabularyId":"RxNorm","objectCompound.concept.conceptClassId":"Ingredient","objectCompound.concept.standardConcept":"S","objectCompound.concept.conceptCode":"6960","objectCompound.concept.validStartDate":"1970-01-01T00:00:00.000Z","objectCompound.concept.validEndDate":"2099-12-31T00:00:00.000Z","objectCompound.concept.invalid_reason":null,"precipitantCompound.id":127,"precipitantCompound.name":"goldenseal 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis 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route","experimentAnswers.question.required":true,"experimentAnswers.question.maxAnswers":1,"experimentAnswers.question.type":null,"experimentAnswers.question.conceptId":null,"experimentAnswers.question.answers.id":614,"experimentAnswers.question.answers.text":"Inhalation","experimentAnswers.question.answers.sortOrder":null,"experimentAnswers.question.answers.conceptId":null,"experimentAnswers.question.answers.questionId":113,"experimentAnswers.answer.id":610,"experimentAnswers.answer.text":"Oral","experimentAnswers.answer.sortOrder":null,"experimentAnswers.answer.conceptId":null,"experimentAnswers.answer.questionId":113},{"id":297,"uid":"NPDI-Bi2fGw","name":"CYP3A4 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Interaction","experimentType.isInVitro":false,"experimentType.isTransporter":false,"experimentType.isEnzyme":false,"experimentType.purl":"http://purl.obolibrary.org/obo/DIDEO_00000071","objectCompound.id":26,"objectCompound.name":"midazolam","objectCompound.unii":"R60L0SM5BC","objectCompound.inChIKey":"DDLIGBOFAVUZHB-UHFFFAOYSA-N","objectCompound.publicDescription":null,"objectCompound.internalComment":null,"objectCompound.conceptId":708298,"objectCompound.enantiomerOfId":null,"objectCompound.concept.conceptId":708298,"objectCompound.concept.conceptName":"Midazolam","objectCompound.concept.domainId":"Drug","objectCompound.concept.vocabularyId":"RxNorm","objectCompound.concept.conceptClassId":"Ingredient","objectCompound.concept.standardConcept":"S","objectCompound.concept.conceptCode":"6960","objectCompound.concept.validStartDate":"1970-01-01T00:00:00.000Z","objectCompound.concept.validEndDate":"2099-12-31T00:00:00.000Z","objectCompound.concept.invalid_reason":null,"precipitantCompound.id":127,"precipitantCompound.name":"goldenseal 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis canadensis","study.naturalProduct.name":"Goldenseal","study.naturalProduct.itis":null,"study.naturalProduct.srs":"66690655-f406-4d67-96e3-2066aafee8d5","study.naturalProduct.source_id":"","study.naturalProduct.conceptId":null,"study.naturalProduct.concept.conceptId":null,"study.naturalProduct.concept.conceptName":null,"study.naturalProduct.concept.domainId":null,"study.naturalProduct.concept.vocabularyId":null,"study.naturalProduct.concept.conceptClassId":null,"study.naturalProduct.concept.standardConcept":null,"study.naturalProduct.concept.conceptCode":null,"study.naturalProduct.concept.validStartDate":null,"study.naturalProduct.concept.validEndDate":null,"study.naturalProduct.concept.invalid_reason":null,"study.compound.id":null,"study.compound.name":null,"study.compound.unii":null,"study.compound.inChIKey":null,"study.compound.publicDescription":null,"study.compound.internalComment":null,"study.compound.conceptId":null,"study.compound.enantiomerOfId":null,"study.studySourceType.id":1,"study.studySourceType.name":"Published 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Interaction","experimentType.isInVitro":false,"experimentType.isTransporter":false,"experimentType.isEnzyme":false,"experimentType.purl":"http://purl.obolibrary.org/obo/DIDEO_00000071","objectCompound.id":26,"objectCompound.name":"midazolam","objectCompound.unii":"R60L0SM5BC","objectCompound.inChIKey":"DDLIGBOFAVUZHB-UHFFFAOYSA-N","objectCompound.publicDescription":null,"objectCompound.internalComment":null,"objectCompound.conceptId":708298,"objectCompound.enantiomerOfId":null,"objectCompound.concept.conceptId":708298,"objectCompound.concept.conceptName":"Midazolam","objectCompound.concept.domainId":"Drug","objectCompound.concept.vocabularyId":"RxNorm","objectCompound.concept.conceptClassId":"Ingredient","objectCompound.concept.standardConcept":"S","objectCompound.concept.conceptCode":"6960","objectCompound.concept.validStartDate":"1970-01-01T00:00:00.000Z","objectCompound.concept.validEndDate":"2099-12-31T00:00:00.000Z","objectCompound.concept.invalid_reason":null,"precipitantCompound.id":127,"precipitantCompound.name":"goldenseal 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis canadensis","study.naturalProduct.name":"Goldenseal","study.naturalProduct.itis":null,"study.naturalProduct.srs":"66690655-f406-4d67-96e3-2066aafee8d5","study.naturalProduct.source_id":"","study.naturalProduct.conceptId":null,"study.naturalProduct.concept.conceptId":null,"study.naturalProduct.concept.conceptName":null,"study.naturalProduct.concept.domainId":null,"study.naturalProduct.concept.vocabularyId":null,"study.naturalProduct.concept.conceptClassId":null,"study.naturalProduct.concept.standardConcept":null,"study.naturalProduct.concept.conceptCode":null,"study.naturalProduct.concept.validStartDate":null,"study.naturalProduct.concept.validEndDate":null,"study.naturalProduct.concept.invalid_reason":null,"study.compound.id":null,"study.compound.name":null,"study.compound.unii":null,"study.compound.inChIKey":null,"study.compound.publicDescription":null,"study.compound.internalComment":null,"study.compound.conceptId":null,"study.compound.enantiomerOfId":null,"study.studySourceType.id":1,"study.studySourceType.name":"Published report","testSystem.id":null,"testSystem.name":null,"testSystem.sortOrder":null,"testSystem.conceptId":null,"testSystem.categoryId":null,"testSystem.category.id":null,"testSystem.category.name":null,"testSystem.category.sortOrder":null,"testSystem.category.requiresCytochromeB5":null,"cytochromeB5.id":null,"cytochromeB5.name":null,"cytochromeB5.sortOrder":null,"cytochromeB5.conceptId":null,"controlDataExperiment.id":null,"controlDataExperiment.uid":null,"controlDataExperiment.name":null,"controlDataExperiment.overallEffect":null,"controlDataExperiment.isControlData":null,"controlDataExperiment.isIc50Shift":null,"controlDataExperiment.croCutoff":null,"controlDataExperiment.croIdentifier":null,"controlDataExperiment.comment":null,"controlDataExperiment.experimentalConditionsComment":null,"controlDataExperiment.resultsComment":null,"controlDataExperiment.internalComment":null,"controlDataExperiment.objectCompoundId":null,"controlDataExperiment.objectMetaboliteCompoundId":null,"controlDataExperiment.precipitantCompoundId":null,"controlDataExperiment.cytochromeB5Id":null,"controlDataExperiment.studyId":null,"controlDataExperiment.experimentTypeId":null,"controlDataExperiment.testSystemId":null,"controlDataExperiment.ic50ShiftExperimentId":null,"controlDataExperiment.controlDataExperimentId":null,"controlDataExperiment.controlDataForExperimentId":null,"controlDataExperiment.naturalProductSampleId":null,"controlDataExperiment.experimentType.id":null,"controlDataExperiment.experimentType.name":null,"controlDataExperiment.experimentType.isInVitro":null,"controlDataExperiment.experimentType.isTransporter":null,"controlDataExperiment.experimentType.isEnzyme":null,"controlDataExperiment.experimentType.purl":null,"controlDataExperiment.objectCompound.id":null,"controlDataExperiment.objectCompound.name":null,"controlDataExperiment.objectCompound.unii":null,"controlDataExperiment.objectCompound.inChIKey":null,"controlDataExperiment.objectCompound.publicDescription":null,"controlDataExperiment.objectCompound.internalComment":null,"controlDataExperiment.objectCompound.conceptId":null,"controlDataExperiment.objectCompound.enantiomerOfId":null,"controlDataExperiment.precipitantCompound.id":null,"controlDataExperiment.precipitantCompound.name":null,"controlDataExperiment.precipitantCompound.unii":null,"controlDataExperiment.precipitantCompound.inChIKey":null,"controlDataExperiment.precipitantCompound.publicDescription":null,"controlDataExperiment.precipitantCompound.internalComment":null,"controlDataExperiment.precipitantCompound.conceptId":null,"controlDataExperiment.precipitantCompound.enantiomerOfId":null,"controlDataExperiment.objectMetaboliteCompound.id":null,"controlDataExperiment.objectMetaboliteCompound.name":null,"controlDataExperiment.objectMetaboliteCompound.unii":null,"controlDataExperiment.objectMetaboliteCompound.inChIKey":null,"controlDataExperiment.objectMetaboliteCompound.publicDescriptio":null,"controlDataExperiment.objectMetaboliteCompound.internalComment":null,"controlDataExperiment.objectMetaboliteCompound.conceptId":null,"controlDataExperiment.objectMetaboliteCompound.enantiomerOfId":null,"controlDataExperiment.enzymes.id":null,"controlDataExperiment.enzymes.name":null,"controlDataExperiment.enzymes.conceptId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.enzymeId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.experiment":null,"controlDataExperiment.transporters.id":null,"controlDataExperiment.transporters.name":null,"controlDataExperiment.transporters.conceptId":null,"controlDataExperiment.transporters.experiment_transporter_xref.":null,"controlDataExperiment.quantifiedMetabolites.id":null,"controlDataExperiment.quantifiedMetabolites.name":null,"controlDataExperiment.quantifiedMetabolites.unii":null,"controlDataExperiment.quantifiedMetabolites.inChIKey":null,"controlDataExperiment.quantifiedMetabolites.publicDescription":null,"controlDataExperiment.quantifiedMetabolites.internalComment":null,"controlDataExperiment.quantifiedMetabolites.conceptId":null,"controlDataExperiment.quantifiedMetabolites.enantiomerOfId":null,"controlDataExperiment.quantifiedMetabolites.experiment_quantifi":null,"experimentAnswers.id":7042,"experimentAnswers.text":null,"experimentAnswers.answerId":610,"experimentAnswers.experimentId":297,"experimentAnswers.questionId":113,"experimentAnswers.question.id":113,"experimentAnswers.question.text":"Administration route","experimentAnswers.question.required":true,"experimentAnswers.question.maxAnswers":1,"experimentAnswers.question.type":null,"experimentAnswers.question.conceptId":null,"experimentAnswers.question.answers.id":611,"experimentAnswers.question.answers.text":"Intravenous","experimentAnswers.question.answers.sortOrder":null,"experimentAnswers.question.answers.conceptId":null,"experimentAnswers.question.answers.questionId":113,"experimentAnswers.answer.id":610,"experimentAnswers.answer.text":"Oral","experimentAnswers.answer.sortOrder":null,"experimentAnswers.answer.conceptId":null,"experimentAnswers.answer.questionId":113},{"id":297,"uid":"NPDI-Bi2fGw","name":"CYP3A4 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Interaction","experimentType.isInVitro":false,"experimentType.isTransporter":false,"experimentType.isEnzyme":false,"experimentType.purl":"http://purl.obolibrary.org/obo/DIDEO_00000071","objectCompound.id":26,"objectCompound.name":"midazolam","objectCompound.unii":"R60L0SM5BC","objectCompound.inChIKey":"DDLIGBOFAVUZHB-UHFFFAOYSA-N","objectCompound.publicDescription":null,"objectCompound.internalComment":null,"objectCompound.conceptId":708298,"objectCompound.enantiomerOfId":null,"objectCompound.concept.conceptId":708298,"objectCompound.concept.conceptName":"Midazolam","objectCompound.concept.domainId":"Drug","objectCompound.concept.vocabularyId":"RxNorm","objectCompound.concept.conceptClassId":"Ingredient","objectCompound.concept.standardConcept":"S","objectCompound.concept.conceptCode":"6960","objectCompound.concept.validStartDate":"1970-01-01T00:00:00.000Z","objectCompound.concept.validEndDate":"2099-12-31T00:00:00.000Z","objectCompound.concept.invalid_reason":null,"precipitantCompound.id":127,"precipitantCompound.name":"goldenseal 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis canadensis","study.naturalProduct.name":"Goldenseal","study.naturalProduct.itis":null,"study.naturalProduct.srs":"66690655-f406-4d67-96e3-2066aafee8d5","study.naturalProduct.source_id":"","study.naturalProduct.conceptId":null,"study.naturalProduct.concept.conceptId":null,"study.naturalProduct.concept.conceptName":null,"study.naturalProduct.concept.domainId":null,"study.naturalProduct.concept.vocabularyId":null,"study.naturalProduct.concept.conceptClassId":null,"study.naturalProduct.concept.standardConcept":null,"study.naturalProduct.concept.conceptCode":null,"study.naturalProduct.concept.validStartDate":null,"study.naturalProduct.concept.validEndDate":null,"study.naturalProduct.concept.invalid_reason":null,"study.compound.id":null,"study.compound.name":null,"study.compound.unii":null,"study.compound.inChIKey":null,"study.compound.publicDescription":null,"study.compound.internalComment":null,"study.compound.conceptId":null,"study.compound.enantiomerOfId":null,"study.studySourceType.id":1,"study.studySourceType.name":"Published report","testSystem.id":null,"testSystem.name":null,"testSystem.sortOrder":null,"testSystem.conceptId":null,"testSystem.categoryId":null,"testSystem.category.id":null,"testSystem.category.name":null,"testSystem.category.sortOrder":null,"testSystem.category.requiresCytochromeB5":null,"cytochromeB5.id":null,"cytochromeB5.name":null,"cytochromeB5.sortOrder":null,"cytochromeB5.conceptId":null,"controlDataExperiment.id":null,"controlDataExperiment.uid":null,"controlDataExperiment.name":null,"controlDataExperiment.overallEffect":null,"controlDataExperiment.isControlData":null,"controlDataExperiment.isIc50Shift":null,"controlDataExperiment.croCutoff":null,"controlDataExperiment.croIdentifier":null,"controlDataExperiment.comment":null,"controlDataExperiment.experimentalConditionsComment":null,"controlDataExperiment.resultsComment":null,"controlDataExperiment.internalComment":null,"controlDataExperiment.objectCompoundId":null,"controlDataExperiment.objectMetaboliteCompoundId":null,"controlDataExperiment.precipitantCompoundId":null,"controlDataExperiment.cytochromeB5Id":null,"controlDataExperiment.studyId":null,"controlDataExperiment.experimentTypeId":null,"controlDataExperiment.testSystemId":null,"controlDataExperiment.ic50ShiftExperimentId":null,"controlDataExperiment.controlDataExperimentId":null,"controlDataExperiment.controlDataForExperimentId":null,"controlDataExperiment.naturalProductSampleId":null,"controlDataExperiment.experimentType.id":null,"controlDataExperiment.experimentType.name":null,"controlDataExperiment.experimentType.isInVitro":null,"controlDataExperiment.experimentType.isTransporter":null,"controlDataExperiment.experimentType.isEnzyme":null,"controlDataExperiment.experimentType.purl":null,"controlDataExperiment.objectCompound.id":null,"controlDataExperiment.objectCompound.name":null,"controlDataExperiment.objectCompound.unii":null,"controlDataExperiment.objectCompound.inChIKey":null,"controlDataExperiment.objectCompound.publicDescription":null,"controlDataExperiment.objectCompound.internalComment":null,"controlDataExperiment.objectCompound.conceptId":null,"controlDataExperiment.objectCompound.enantiomerOfId":null,"controlDataExperiment.precipitantCompound.id":null,"controlDataExperiment.precipitantCompound.name":null,"controlDataExperiment.precipitantCompound.unii":null,"controlDataExperiment.precipitantCompound.inChIKey":null,"controlDataExperiment.precipitantCompound.publicDescription":null,"controlDataExperiment.precipitantCompound.internalComment":null,"controlDataExperiment.precipitantCompound.conceptId":null,"controlDataExperiment.precipitantCompound.enantiomerOfId":null,"controlDataExperiment.objectMetaboliteCompound.id":null,"controlDataExperiment.objectMetaboliteCompound.name":null,"controlDataExperiment.objectMetaboliteCompound.unii":null,"controlDataExperiment.objectMetaboliteCompound.inChIKey":null,"controlDataExperiment.objectMetaboliteCompound.publicDescriptio":null,"controlDataExperiment.objectMetaboliteCompound.internalComment":null,"controlDataExperiment.objectMetaboliteCompound.conceptId":null,"controlDataExperiment.objectMetaboliteCompound.enantiomerOfId":null,"controlDataExperiment.enzymes.id":null,"controlDataExperiment.enzymes.name":null,"controlDataExperiment.enzymes.conceptId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.enzymeId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.experiment":null,"controlDataExperiment.transporters.id":null,"controlDataExperiment.transporters.name":null,"controlDataExperiment.transporters.conceptId":null,"controlDataExperiment.transporters.experiment_transporter_xref.":null,"controlDataExperiment.quantifiedMetabolites.id":null,"controlDataExperiment.quantifiedMetabolites.name":null,"controlDataExperiment.quantifiedMetabolites.unii":null,"controlDataExperiment.quantifiedMetabolites.inChIKey":null,"controlDataExperiment.quantifiedMetabolites.publicDescription":null,"controlDataExperiment.quantifiedMetabolites.internalComment":null,"controlDataExperiment.quantifiedMetabolites.conceptId":null,"controlDataExperiment.quantifiedMetabolites.enantiomerOfId":null,"controlDataExperiment.quantifiedMetabolites.experiment_quantifi":null,"experimentAnswers.id":7042,"experimentAnswers.text":null,"experimentAnswers.answerId":610,"experimentAnswers.experimentId":297,"experimentAnswers.questionId":113,"experimentAnswers.question.id":113,"experimentAnswers.question.text":"Administration route","experimentAnswers.question.required":true,"experimentAnswers.question.maxAnswers":1,"experimentAnswers.question.type":null,"experimentAnswers.question.conceptId":null,"experimentAnswers.question.answers.id":616,"experimentAnswers.question.answers.text":"Sublingual","experimentAnswers.question.answers.sortOrder":null,"experimentAnswers.question.answers.conceptId":null,"experimentAnswers.question.answers.questionId":113,"experimentAnswers.answer.id":610,"experimentAnswers.answer.text":"Oral","experimentAnswers.answer.sortOrder":null,"experimentAnswers.answer.conceptId":null,"experimentAnswers.answer.questionId":113},{"id":297,"uid":"NPDI-Bi2fGw","name":"CYP3A4 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Interaction","experimentType.isInVitro":false,"experimentType.isTransporter":false,"experimentType.isEnzyme":false,"experimentType.purl":"http://purl.obolibrary.org/obo/DIDEO_00000071","objectCompound.id":26,"objectCompound.name":"midazolam","objectCompound.unii":"R60L0SM5BC","objectCompound.inChIKey":"DDLIGBOFAVUZHB-UHFFFAOYSA-N","objectCompound.publicDescription":null,"objectCompound.internalComment":null,"objectCompound.conceptId":708298,"objectCompound.enantiomerOfId":null,"objectCompound.concept.conceptId":708298,"objectCompound.concept.conceptName":"Midazolam","objectCompound.concept.domainId":"Drug","objectCompound.concept.vocabularyId":"RxNorm","objectCompound.concept.conceptClassId":"Ingredient","objectCompound.concept.standardConcept":"S","objectCompound.concept.conceptCode":"6960","objectCompound.concept.validStartDate":"1970-01-01T00:00:00.000Z","objectCompound.concept.validEndDate":"2099-12-31T00:00:00.000Z","objectCompound.concept.invalid_reason":null,"precipitantCompound.id":127,"precipitantCompound.name":"goldenseal 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis canadensis","study.naturalProduct.name":"Goldenseal","study.naturalProduct.itis":null,"study.naturalProduct.srs":"66690655-f406-4d67-96e3-2066aafee8d5","study.naturalProduct.source_id":"","study.naturalProduct.conceptId":null,"study.naturalProduct.concept.conceptId":null,"study.naturalProduct.concept.conceptName":null,"study.naturalProduct.concept.domainId":null,"study.naturalProduct.concept.vocabularyId":null,"study.naturalProduct.concept.conceptClassId":null,"study.naturalProduct.concept.standardConcept":null,"study.naturalProduct.concept.conceptCode":null,"study.naturalProduct.concept.validStartDate":null,"study.naturalProduct.concept.validEndDate":null,"study.naturalProduct.concept.invalid_reason":null,"study.compound.id":null,"study.compound.name":null,"study.compound.unii":null,"study.compound.inChIKey":null,"study.compound.publicDescription":null,"study.compound.internalComment":null,"study.compound.conceptId":null,"study.compound.enantiomerOfId":null,"study.studySourceType.id":1,"study.studySourceType.name":"Published report","testSystem.id":null,"testSystem.name":null,"testSystem.sortOrder":null,"testSystem.conceptId":null,"testSystem.categoryId":null,"testSystem.category.id":null,"testSystem.category.name":null,"testSystem.category.sortOrder":null,"testSystem.category.requiresCytochromeB5":null,"cytochromeB5.id":null,"cytochromeB5.name":null,"cytochromeB5.sortOrder":null,"cytochromeB5.conceptId":null,"controlDataExperiment.id":null,"controlDataExperiment.uid":null,"controlDataExperiment.name":null,"controlDataExperiment.overallEffect":null,"controlDataExperiment.isControlData":null,"controlDataExperiment.isIc50Shift":null,"controlDataExperiment.croCutoff":null,"controlDataExperiment.croIdentifier":null,"controlDataExperiment.comment":null,"controlDataExperiment.experimentalConditionsComment":null,"controlDataExperiment.resultsComment":null,"controlDataExperiment.internalComment":null,"controlDataExperiment.objectCompoundId":null,"controlDataExperiment.objectMetaboliteCompoundId":null,"controlDataExperiment.precipitantCompoundId":null,"controlDataExperiment.cytochromeB5Id":null,"controlDataExperiment.studyId":null,"controlDataExperiment.experimentTypeId":null,"controlDataExperiment.testSystemId":null,"controlDataExperiment.ic50ShiftExperimentId":null,"controlDataExperiment.controlDataExperimentId":null,"controlDataExperiment.controlDataForExperimentId":null,"controlDataExperiment.naturalProductSampleId":null,"controlDataExperiment.experimentType.id":null,"controlDataExperiment.experimentType.name":null,"controlDataExperiment.experimentType.isInVitro":null,"controlDataExperiment.experimentType.isTransporter":null,"controlDataExperiment.experimentType.isEnzyme":null,"controlDataExperiment.experimentType.purl":null,"controlDataExperiment.objectCompound.id":null,"controlDataExperiment.objectCompound.name":null,"controlDataExperiment.objectCompound.unii":null,"controlDataExperiment.objectCompound.inChIKey":null,"controlDataExperiment.objectCompound.publicDescription":null,"controlDataExperiment.objectCompound.internalComment":null,"controlDataExperiment.objectCompound.conceptId":null,"controlDataExperiment.objectCompound.enantiomerOfId":null,"controlDataExperiment.precipitantCompound.id":null,"controlDataExperiment.precipitantCompound.name":null,"controlDataExperiment.precipitantCompound.unii":null,"controlDataExperiment.precipitantCompound.inChIKey":null,"controlDataExperiment.precipitantCompound.publicDescription":null,"controlDataExperiment.precipitantCompound.internalComment":null,"controlDataExperiment.precipitantCompound.conceptId":null,"controlDataExperiment.precipitantCompound.enantiomerOfId":null,"controlDataExperiment.objectMetaboliteCompound.id":null,"controlDataExperiment.objectMetaboliteCompound.name":null,"controlDataExperiment.objectMetaboliteCompound.unii":null,"controlDataExperiment.objectMetaboliteCompound.inChIKey":null,"controlDataExperiment.objectMetaboliteCompound.publicDescriptio":null,"controlDataExperiment.objectMetaboliteCompound.internalComment":null,"controlDataExperiment.objectMetaboliteCompound.conceptId":null,"controlDataExperiment.objectMetaboliteCompound.enantiomerOfId":null,"controlDataExperiment.enzymes.id":null,"controlDataExperiment.enzymes.name":null,"controlDataExperiment.enzymes.conceptId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.enzymeId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.experiment":null,"controlDataExperiment.transporters.id":null,"controlDataExperiment.transporters.name":null,"controlDataExperiment.transporters.conceptId":null,"controlDataExperiment.transporters.experiment_transporter_xref.":null,"controlDataExperiment.quantifiedMetabolites.id":null,"controlDataExperiment.quantifiedMetabolites.name":null,"controlDataExperiment.quantifiedMetabolites.unii":null,"controlDataExperiment.quantifiedMetabolites.inChIKey":null,"controlDataExperiment.quantifiedMetabolites.publicDescription":null,"controlDataExperiment.quantifiedMetabolites.internalComment":null,"controlDataExperiment.quantifiedMetabolites.conceptId":null,"controlDataExperiment.quantifiedMetabolites.enantiomerOfId":null,"controlDataExperiment.quantifiedMetabolites.experiment_quantifi":null,"experimentAnswers.id":7048,"experimentAnswers.text":"capsule","experimentAnswers.answerId":null,"experimentAnswers.experimentId":297,"experimentAnswers.questionId":114,"experimentAnswers.question.id":114,"experimentAnswers.question.text":"Formulation","experimentAnswers.question.required":true,"experimentAnswers.question.maxAnswers":null,"experimentAnswers.question.type":"STRING","experimentAnswers.question.conceptId":null,"experimentAnswers.question.answers.id":null,"experimentAnswers.question.answers.text":null,"experimentAnswers.question.answers.sortOrder":null,"experimentAnswers.question.answers.conceptId":null,"experimentAnswers.question.answers.questionId":null,"experimentAnswers.answer.id":null,"experimentAnswers.answer.text":null,"experimentAnswers.answer.sortOrder":null,"experimentAnswers.answer.conceptId":null,"experimentAnswers.answer.questionId":null},{"id":297,"uid":"NPDI-Bi2fGw","name":"CYP3A4 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Interaction","experimentType.isInVitro":false,"experimentType.isTransporter":false,"experimentType.isEnzyme":false,"experimentType.purl":"http://purl.obolibrary.org/obo/DIDEO_00000071","objectCompound.id":26,"objectCompound.name":"midazolam","objectCompound.unii":"R60L0SM5BC","objectCompound.inChIKey":"DDLIGBOFAVUZHB-UHFFFAOYSA-N","objectCompound.publicDescription":null,"objectCompound.internalComment":null,"objectCompound.conceptId":708298,"objectCompound.enantiomerOfId":null,"objectCompound.concept.conceptId":708298,"objectCompound.concept.conceptName":"Midazolam","objectCompound.concept.domainId":"Drug","objectCompound.concept.vocabularyId":"RxNorm","objectCompound.concept.conceptClassId":"Ingredient","objectCompound.concept.standardConcept":"S","objectCompound.concept.conceptCode":"6960","objectCompound.concept.validStartDate":"1970-01-01T00:00:00.000Z","objectCompound.concept.validEndDate":"2099-12-31T00:00:00.000Z","objectCompound.concept.invalid_reason":null,"precipitantCompound.id":127,"precipitantCompound.name":"goldenseal 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extract","precipitantCompound.unii":null,"precipitantCompound.inChIKey":null,"precipitantCompound.publicDescription":null,"precipitantCompound.internalComment":null,"precipitantCompound.conceptId":null,"precipitantCompound.enantiomerOfId":null,"precipitantCompound.concept.conceptId":null,"precipitantCompound.concept.conceptName":null,"precipitantCompound.concept.domainId":null,"precipitantCompound.concept.vocabularyId":null,"precipitantCompound.concept.conceptClassId":null,"precipitantCompound.concept.standardConcept":null,"precipitantCompound.concept.conceptCode":null,"precipitantCompound.concept.validStartDate":null,"precipitantCompound.concept.validEndDate":null,"precipitantCompound.concept.invalid_reason":null,"objectMetaboliteCompound.id":null,"objectMetaboliteCompound.name":null,"objectMetaboliteCompound.unii":null,"objectMetaboliteCompound.inChIKey":null,"objectMetaboliteCompound.publicDescription":null,"objectMetaboliteCompound.internalComment":null,"objectMetaboliteCompound.conceptId":null,"objectMetaboliteCompound.enantiomerOfId":null,"objectMetaboliteCompound.concept.conceptId":null,"objectMetaboliteCompound.concept.conceptName":null,"objectMetaboliteCompound.concept.domainId":null,"objectMetaboliteCompound.concept.vocabularyId":null,"objectMetaboliteCompound.concept.conceptClassId":null,"objectMetaboliteCompound.concept.standardConcept":null,"objectMetaboliteCompound.concept.conceptCode":null,"objectMetaboliteCompound.concept.validStartDate":null,"objectMetaboliteCompound.concept.validEndDate":null,"objectMetaboliteCompound.concept.invalid_reason":null,"enzymes.id":13,"enzymes.name":"CYP3A4","enzymes.conceptId":4306811,"enzymes.experiment_enzyme_xref.enzymeId":13,"enzymes.experiment_enzyme_xref.experimentId":297,"transporters.id":null,"transporters.name":null,"transporters.conceptId":null,"transporters.experiment_transporter_xref.experimentId":null,"transporters.experiment_transporter_xref.transporterId":null,"quantifiedMetabolites.id":null,"quantifiedMetabolites.name":null,"quantifiedMetabolites.unii":null,"quantifiedMetabolites.inChIKey":null,"quantifiedMetabolites.publicDescription":null,"quantifiedMetabolites.internalComment":null,"quantifiedMetabolites.conceptId":null,"quantifiedMetabolites.enantiomerOfId":null,"quantifiedMetabolites.experiment_quantified_metabolite_xref.com":null,"quantifiedMetabolites.experiment_quantified_metabolite_xref.exp":null,"study.id":73,"study.uid":"NPDI-ftEv0g","study.name":"In vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis canadensis","study.naturalProduct.name":"Goldenseal","study.naturalProduct.itis":null,"study.naturalProduct.srs":"66690655-f406-4d67-96e3-2066aafee8d5","study.naturalProduct.source_id":"","study.naturalProduct.conceptId":null,"study.naturalProduct.concept.conceptId":null,"study.naturalProduct.concept.conceptName":null,"study.naturalProduct.concept.domainId":null,"study.naturalProduct.concept.vocabularyId":null,"study.naturalProduct.concept.conceptClassId":null,"study.naturalProduct.concept.standardConcept":null,"study.naturalProduct.concept.conceptCode":null,"study.naturalProduct.concept.validStartDate":null,"study.naturalProduct.concept.validEndDate":null,"study.naturalProduct.concept.invalid_reason":null,"study.compound.id":null,"study.compound.name":null,"study.compound.unii":null,"study.compound.inChIKey":null,"study.compound.publicDescription":null,"study.compound.internalComment":null,"study.compound.conceptId":null,"study.compound.enantiomerOfId":null,"study.studySourceType.id":1,"study.studySourceType.name":"Published report","testSystem.id":null,"testSystem.name":null,"testSystem.sortOrder":null,"testSystem.conceptId":null,"testSystem.categoryId":null,"testSystem.category.id":null,"testSystem.category.name":null,"testSystem.category.sortOrder":null,"testSystem.category.requiresCytochromeB5":null,"cytochromeB5.id":null,"cytochromeB5.name":null,"cytochromeB5.sortOrder":null,"cytochromeB5.conceptId":null,"controlDataExperiment.id":null,"controlDataExperiment.uid":null,"controlDataExperiment.name":null,"controlDataExperiment.overallEffect":null,"controlDataExperiment.isControlData":null,"controlDataExperiment.isIc50Shift":null,"controlDataExperiment.croCutoff":null,"controlDataExperiment.croIdentifier":null,"controlDataExperiment.comment":null,"controlDataExperiment.experimentalConditionsComment":null,"controlDataExperiment.resultsComment":null,"controlDataExperiment.internalComment":null,"controlDataExperiment.objectCompoundId":null,"controlDataExperiment.objectMetaboliteCompoundId":null,"controlDataExperiment.precipitantCompoundId":null,"controlDataExperiment.cytochromeB5Id":null,"controlDataExperiment.studyId":null,"controlDataExperiment.experimentTypeId":null,"controlDataExperiment.testSystemId":null,"controlDataExperiment.ic50ShiftExperimentId":null,"controlDataExperiment.controlDataExperimentId":null,"controlDataExperiment.controlDataForExperimentId":null,"controlDataExperiment.naturalProductSampleId":null,"controlDataExperiment.experimentType.id":null,"controlDataExperiment.experimentType.name":null,"controlDataExperiment.experimentType.isInVitro":null,"controlDataExperiment.experimentType.isTransporter":null,"controlDataExperiment.experimentType.isEnzyme":null,"controlDataExperiment.experimentType.purl":null,"controlDataExperiment.objectCompound.id":null,"controlDataExperiment.objectCompound.name":null,"controlDataExperiment.objectCompound.unii":null,"controlDataExperiment.objectCompound.inChIKey":null,"controlDataExperiment.objectCompound.publicDescription":null,"controlDataExperiment.objectCompound.internalComment":null,"controlDataExperiment.objectCompound.conceptId":null,"controlDataExperiment.objectCompound.enantiomerOfId":null,"controlDataExperiment.precipitantCompound.id":null,"controlDataExperiment.precipitantCompound.name":null,"controlDataExperiment.precipitantCompound.unii":null,"controlDataExperiment.precipitantCompound.inChIKey":null,"controlDataExperiment.precipitantCompound.publicDescription":null,"controlDataExperiment.precipitantCompound.internalComment":null,"controlDataExperiment.precipitantCompound.conceptId":null,"controlDataExperiment.precipitantCompound.enantiomerOfId":null,"controlDataExperiment.objectMetaboliteCompound.id":null,"controlDataExperiment.objectMetaboliteCompound.name":null,"controlDataExperiment.objectMetaboliteCompound.unii":null,"controlDataExperiment.objectMetaboliteCompound.inChIKey":null,"controlDataExperiment.objectMetaboliteCompound.publicDescriptio":null,"controlDataExperiment.objectMetaboliteCompound.internalComment":null,"controlDataExperiment.objectMetaboliteCompound.conceptId":null,"controlDataExperiment.objectMetaboliteCompound.enantiomerOfId":null,"controlDataExperiment.enzymes.id":null,"controlDataExperiment.enzymes.name":null,"controlDataExperiment.enzymes.conceptId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.enzymeId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.experiment":null,"controlDataExperiment.transporters.id":null,"controlDataExperiment.transporters.name":null,"controlDataExperiment.transporters.conceptId":null,"controlDataExperiment.transporters.experiment_transporter_xref.":null,"controlDataExperiment.quantifiedMetabolites.id":null,"controlDataExperiment.quantifiedMetabolites.name":null,"controlDataExperiment.quantifiedMetabolites.unii":null,"controlDataExperiment.quantifiedMetabolites.inChIKey":null,"controlDataExperiment.quantifiedMetabolites.publicDescription":null,"controlDataExperiment.quantifiedMetabolites.internalComment":null,"controlDataExperiment.quantifiedMetabolites.conceptId":null,"controlDataExperiment.quantifiedMetabolites.enantiomerOfId":null,"controlDataExperiment.quantifiedMetabolites.experiment_quantifi":null,"experimentAnswers.id":7050,"experimentAnswers.text":"three 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Interaction","experimentType.isInVitro":false,"experimentType.isTransporter":false,"experimentType.isEnzyme":false,"experimentType.purl":"http://purl.obolibrary.org/obo/DIDEO_00000071","objectCompound.id":26,"objectCompound.name":"midazolam","objectCompound.unii":"R60L0SM5BC","objectCompound.inChIKey":"DDLIGBOFAVUZHB-UHFFFAOYSA-N","objectCompound.publicDescription":null,"objectCompound.internalComment":null,"objectCompound.conceptId":708298,"objectCompound.enantiomerOfId":null,"objectCompound.concept.conceptId":708298,"objectCompound.concept.conceptName":"Midazolam","objectCompound.concept.domainId":"Drug","objectCompound.concept.vocabularyId":"RxNorm","objectCompound.concept.conceptClassId":"Ingredient","objectCompound.concept.standardConcept":"S","objectCompound.concept.conceptCode":"6960","objectCompound.concept.validStartDate":"1970-01-01T00:00:00.000Z","objectCompound.concept.validEndDate":"2099-12-31T00:00:00.000Z","objectCompound.concept.invalid_reason":null,"precipitantCompound.id":127,"precipitantCompound.name":"goldenseal 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis 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Boulder, CO.","experimentAnswers.answerId":null,"experimentAnswers.experimentId":297,"experimentAnswers.questionId":118,"experimentAnswers.question.id":118,"experimentAnswers.question.text":"Manufacturer/source","experimentAnswers.question.required":false,"experimentAnswers.question.maxAnswers":null,"experimentAnswers.question.type":"STRING","experimentAnswers.question.conceptId":null,"experimentAnswers.question.answers.id":null,"experimentAnswers.question.answers.text":null,"experimentAnswers.question.answers.sortOrder":null,"experimentAnswers.question.answers.conceptId":null,"experimentAnswers.question.answers.questionId":null,"experimentAnswers.answer.id":null,"experimentAnswers.answer.text":null,"experimentAnswers.answer.sortOrder":null,"experimentAnswers.answer.conceptId":null,"experimentAnswers.answer.questionId":null},{"id":297,"uid":"NPDI-Bi2fGw","name":"CYP3A4 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. 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Interaction","experimentType.isInVitro":false,"experimentType.isTransporter":false,"experimentType.isEnzyme":false,"experimentType.purl":"http://purl.obolibrary.org/obo/DIDEO_00000071","objectCompound.id":26,"objectCompound.name":"midazolam","objectCompound.unii":"R60L0SM5BC","objectCompound.inChIKey":"DDLIGBOFAVUZHB-UHFFFAOYSA-N","objectCompound.publicDescription":null,"objectCompound.internalComment":null,"objectCompound.conceptId":708298,"objectCompound.enantiomerOfId":null,"objectCompound.concept.conceptId":708298,"objectCompound.concept.conceptName":"Midazolam","objectCompound.concept.domainId":"Drug","objectCompound.concept.vocabularyId":"RxNorm","objectCompound.concept.conceptClassId":"Ingredient","objectCompound.concept.standardConcept":"S","objectCompound.concept.conceptCode":"6960","objectCompound.concept.validStartDate":"1970-01-01T00:00:00.000Z","objectCompound.concept.validEndDate":"2099-12-31T00:00:00.000Z","objectCompound.concept.invalid_reason":null,"precipitantCompound.id":127,"precipitantCompound.name":"goldenseal 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis 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event classes","experimentAnswers.question.required":false,"experimentAnswers.question.maxAnswers":100,"experimentAnswers.question.type":null,"experimentAnswers.question.conceptId":null,"experimentAnswers.question.answers.id":700,"experimentAnswers.question.answers.text":"Blood and lymphatic system disorders","experimentAnswers.question.answers.sortOrder":null,"experimentAnswers.question.answers.conceptId":35100000,"experimentAnswers.question.answers.questionId":128,"experimentAnswers.answer.id":706,"experimentAnswers.answer.text":"Gastrointestinal disorders","experimentAnswers.answer.sortOrder":null,"experimentAnswers.answer.conceptId":35700000,"experimentAnswers.answer.questionId":128},{"id":297,"uid":"NPDI-Bi2fGw","name":"CYP3A4 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis canadensis","study.naturalProduct.name":"Goldenseal","study.naturalProduct.itis":null,"study.naturalProduct.srs":"66690655-f406-4d67-96e3-2066aafee8d5","study.naturalProduct.source_id":"","study.naturalProduct.conceptId":null,"study.naturalProduct.concept.conceptId":null,"study.naturalProduct.concept.conceptName":null,"study.naturalProduct.concept.domainId":null,"study.naturalProduct.concept.vocabularyId":null,"study.naturalProduct.concept.conceptClassId":null,"study.naturalProduct.concept.standardConcept":null,"study.naturalProduct.concept.conceptCode":null,"study.naturalProduct.concept.validStartDate":null,"study.naturalProduct.concept.validEndDate":null,"study.naturalProduct.concept.invalid_reason":null,"study.compound.id":null,"study.compound.name":null,"study.compound.unii":null,"study.compound.inChIKey":null,"study.compound.publicDescription":null,"study.compound.internalComment":null,"study.compound.conceptId":null,"study.compound.enantiomerOfId":null,"study.studySourceType.id":1,"study.studySourceType.name":"Published report","testSystem.id":null,"testSystem.name":null,"testSystem.sortOrder":null,"testSystem.conceptId":null,"testSystem.categoryId":null,"testSystem.category.id":null,"testSystem.category.name":null,"testSystem.category.sortOrder":null,"testSystem.category.requiresCytochromeB5":null,"cytochromeB5.id":null,"cytochromeB5.name":null,"cytochromeB5.sortOrder":null,"cytochromeB5.conceptId":null,"controlDataExperiment.id":null,"controlDataExperiment.uid":null,"controlDataExperiment.name":null,"controlDataExperiment.overallEffect":null,"controlDataExperiment.isControlData":null,"controlDataExperiment.isIc50Shift":null,"controlDataExperiment.croCutoff":null,"controlDataExperiment.croIdentifier":null,"controlDataExperiment.comment":null,"controlDataExperiment.experimentalConditionsComment":null,"controlDataExperiment.resultsComment":null,"controlDataExperiment.internalComment":null,"controlDataExperiment.objectCompoundId":null,"controlDataExperiment.objectMetaboliteCompoundId":null,"controlDataExperiment.precipitantCompoundId":null,"controlDataExperiment.cytochromeB5Id":null,"controlDataExperiment.studyId":null,"controlDataExperiment.experimentTypeId":null,"controlDataExperiment.testSystemId":null,"controlDataExperiment.ic50ShiftExperimentId":null,"controlDataExperiment.controlDataExperimentId":null,"controlDataExperiment.controlDataForExperimentId":null,"controlDataExperiment.naturalProductSampleId":null,"controlDataExperiment.experimentType.id":null,"controlDataExperiment.experimentType.name":null,"controlDataExperiment.experimentType.isInVitro":null,"controlDataExperiment.experimentType.isTransporter":null,"controlDataExperiment.experimentType.isEnzyme":null,"controlDataExperiment.experimentType.purl":null,"controlDataExperiment.objectCompound.id":null,"controlDataExperiment.objectCompound.name":null,"controlDataExperiment.objectCompound.unii":null,"controlDataExperiment.objectCompound.inChIKey":null,"controlDataExperiment.objectCompound.publicDescription":null,"controlDataExperiment.objectCompound.internalComment":null,"controlDataExperiment.objectCompound.conceptId":null,"controlDataExperiment.objectCompound.enantiomerOfId":null,"controlDataExperiment.precipitantCompound.id":null,"controlDataExperiment.precipitantCompound.name":null,"controlDataExperiment.precipitantCompound.unii":null,"controlDataExperiment.precipitantCompound.inChIKey":null,"controlDataExperiment.precipitantCompound.publicDescription":null,"controlDataExperiment.precipitantCompound.internalComment":null,"controlDataExperiment.precipitantCompound.conceptId":null,"controlDataExperiment.precipitantCompound.enantiomerOfId":null,"controlDataExperiment.objectMetaboliteCompound.id":null,"controlDataExperiment.objectMetaboliteCompound.name":null,"controlDataExperiment.objectMetaboliteCompound.unii":null,"controlDataExperiment.objectMetaboliteCompound.inChIKey":null,"controlDataExperiment.objectMetaboliteCompound.publicDescriptio":null,"controlDataExperiment.objectMetaboliteCompound.internalComment":null,"controlDataExperiment.objectMetaboliteCompound.conceptId":null,"controlDataExperiment.objectMetaboliteCompound.enantiomerOfId":null,"controlDataExperiment.enzymes.id":null,"controlDataExperiment.enzymes.name":null,"controlDataExperiment.enzymes.conceptId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.enzymeId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.experiment":null,"controlDataExperiment.transporters.id":null,"controlDataExperiment.transporters.name":null,"controlDataExperiment.transporters.conceptId":null,"controlDataExperiment.transporters.experiment_transporter_xref.":null,"controlDataExperiment.quantifiedMetabolites.id":null,"controlDataExperiment.quantifiedMetabolites.name":null,"controlDataExperiment.quantifiedMetabolites.unii":null,"controlDataExperiment.quantifiedMetabolites.inChIKey":null,"controlDataExperiment.quantifiedMetabolites.publicDescription":null,"controlDataExperiment.quantifiedMetabolites.internalComment":null,"controlDataExperiment.quantifiedMetabolites.conceptId":null,"controlDataExperiment.quantifiedMetabolites.enantiomerOfId":null,"controlDataExperiment.quantifiedMetabolites.experiment_quantifi":null,"experimentAnswers.id":7054,"experimentAnswers.text":null,"experimentAnswers.answerId":706,"experimentAnswers.experimentId":297,"experimentAnswers.questionId":128,"experimentAnswers.question.id":128,"experimentAnswers.question.text":"Adverse event classes","experimentAnswers.question.required":false,"experimentAnswers.question.maxAnswers":100,"experimentAnswers.question.type":null,"experimentAnswers.question.conceptId":null,"experimentAnswers.question.answers.id":701,"experimentAnswers.question.answers.text":"Cardiac disorders","experimentAnswers.question.answers.sortOrder":null,"experimentAnswers.question.answers.conceptId":35200000,"experimentAnswers.question.answers.questionId":128,"experimentAnswers.answer.id":706,"experimentAnswers.answer.text":"Gastrointestinal disorders","experimentAnswers.answer.sortOrder":null,"experimentAnswers.answer.conceptId":35700000,"experimentAnswers.answer.questionId":128},{"id":297,"uid":"NPDI-Bi2fGw","name":"CYP3A4 Experiment","overallEffect":1,"isControlData":false,"isIc50Shift":false,"croCutoff":null,"croIdentifier":null,"comment":null,"experimentalConditionsComment":null,"resultsComment":null,"internalComment":null,"objectCompoundId":26,"objectMetaboliteCompoundId":null,"precipitantCompoundId":127,"cytochromeB5Id":null,"studyId":73,"experimentTypeId":9,"testSystemId":null,"ic50ShiftExperimentId":null,"controlDataExperimentId":null,"controlDataForExperimentId":null,"naturalProductSampleId":null,"experimentType.id":9,"experimentType.name":"In Vivo Interaction","experimentType.isInVitro":false,"experimentType.isTransporter":false,"experimentType.isEnzyme":false,"experimentType.purl":"http://purl.obolibrary.org/obo/DIDEO_00000071","objectCompound.id":26,"objectCompound.name":"midazolam","objectCompound.unii":"R60L0SM5BC","objectCompound.inChIKey":"DDLIGBOFAVUZHB-UHFFFAOYSA-N","objectCompound.publicDescription":null,"objectCompound.internalComment":null,"objectCompound.conceptId":708298,"objectCompound.enantiomerOfId":null,"objectCompound.concept.conceptId":708298,"objectCompound.concept.conceptName":"Midazolam","objectCompound.concept.domainId":"Drug","objectCompound.concept.vocabularyId":"RxNorm","objectCompound.concept.conceptClassId":"Ingredient","objectCompound.concept.standardConcept":"S","objectCompound.concept.conceptCode":"6960","objectCompound.concept.validStartDate":"1970-01-01T00:00:00.000Z","objectCompound.concept.validEndDate":"2099-12-31T00:00:00.000Z","objectCompound.concept.invalid_reason":null,"precipitantCompound.id":127,"precipitantCompound.name":"goldenseal root extract","precipitantCompound.unii":null,"precipitantCompound.inChIKey":null,"precipitantCompound.publicDescription":null,"precipitantCompound.internalComment":null,"precipitantCompound.conceptId":null,"precipitantCompound.enantiomerOfId":null,"precipitantCompound.concept.conceptId":null,"precipitantCompound.concept.conceptName":null,"precipitantCompound.concept.domainId":null,"precipitantCompound.concept.vocabularyId":null,"precipitantCompound.concept.conceptClassId":null,"precipitantCompound.concept.standardConcept":null,"precipitantCompound.concept.conceptCode":null,"precipitantCompound.concept.validStartDate":null,"precipitantCompound.concept.validEndDate":null,"precipitantCompound.concept.invalid_reason":null,"objectMetaboliteCompound.id":null,"objectMetaboliteCompound.name":null,"objectMetaboliteCompound.unii":null,"objectMetaboliteCompound.inChIKey":null,"objectMetaboliteCompound.publicDescription":null,"objectMetaboliteCompound.internalComment":null,"objectMetaboliteCompound.conceptId":null,"objectMetaboliteCompound.enantiomerOfId":null,"objectMetaboliteCompound.concept.conceptId":null,"objectMetaboliteCompound.concept.conceptName":null,"objectMetaboliteCompound.concept.domainId":null,"objectMetaboliteCompound.concept.vocabularyId":null,"objectMetaboliteCompound.concept.conceptClassId":null,"objectMetaboliteCompound.concept.standardConcept":null,"objectMetaboliteCompound.concept.conceptCode":null,"objectMetaboliteCompound.concept.validStartDate":null,"objectMetaboliteCompound.concept.validEndDate":null,"objectMetaboliteCompound.concept.invalid_reason":null,"enzymes.id":13,"enzymes.name":"CYP3A4","enzymes.conceptId":4306811,"enzymes.experiment_enzyme_xref.enzymeId":13,"enzymes.experiment_enzyme_xref.experimentId":297,"transporters.id":null,"transporters.name":null,"transporters.conceptId":null,"transporters.experiment_transporter_xref.experimentId":null,"transporters.experiment_transporter_xref.transporterId":null,"quantifiedMetabolites.id":null,"quantifiedMetabolites.name":null,"quantifiedMetabolites.unii":null,"quantifiedMetabolites.inChIKey":null,"quantifiedMetabolites.publicDescription":null,"quantifiedMetabolites.internalComment":null,"quantifiedMetabolites.conceptId":null,"quantifiedMetabolites.enantiomerOfId":null,"quantifiedMetabolites.experiment_quantified_metabolite_xref.com":null,"quantifiedMetabolites.experiment_quantified_metabolite_xref.exp":null,"study.id":73,"study.uid":"NPDI-ftEv0g","study.name":"In vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis 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report","testSystem.id":null,"testSystem.name":null,"testSystem.sortOrder":null,"testSystem.conceptId":null,"testSystem.categoryId":null,"testSystem.category.id":null,"testSystem.category.name":null,"testSystem.category.sortOrder":null,"testSystem.category.requiresCytochromeB5":null,"cytochromeB5.id":null,"cytochromeB5.name":null,"cytochromeB5.sortOrder":null,"cytochromeB5.conceptId":null,"controlDataExperiment.id":null,"controlDataExperiment.uid":null,"controlDataExperiment.name":null,"controlDataExperiment.overallEffect":null,"controlDataExperiment.isControlData":null,"controlDataExperiment.isIc50Shift":null,"controlDataExperiment.croCutoff":null,"controlDataExperiment.croIdentifier":null,"controlDataExperiment.comment":null,"controlDataExperiment.experimentalConditionsComment":null,"controlDataExperiment.resultsComment":null,"controlDataExperiment.internalComment":null,"controlDataExperiment.objectCompoundId":null,"controlDataExperiment.objectMetaboliteCompoundId":null,"controlDataExperiment.precipitantCompoundId":null,"controlDataExperiment.cytochromeB5Id":null,"controlDataExperiment.studyId":null,"controlDataExperiment.experimentTypeId":null,"controlDataExperiment.testSystemId":null,"controlDataExperiment.ic50ShiftExperimentId":null,"controlDataExperiment.controlDataExperimentId":null,"controlDataExperiment.controlDataForExperimentId":null,"controlDataExperiment.naturalProductSampleId":null,"controlDataExperiment.experimentType.id":null,"controlDataExperiment.experimentType.name":null,"controlDataExperiment.experimentType.isInVitro":null,"controlDataExperiment.experimentType.isTransporter":null,"controlDataExperiment.experimentType.isEnzyme":null,"controlDataExperiment.experimentType.purl":null,"controlDataExperiment.objectCompound.id":null,"controlDataExperiment.objectCompound.name":null,"controlDataExperiment.objectCompound.unii":null,"controlDataExperiment.objectCompound.inChIKey":null,"controlDataExperiment.objectCompound.publicDescription":null,"controlDataExperiment.objectCompound.internalComment":null,"controlDataExperiment.objectCompound.conceptId":null,"controlDataExperiment.objectCompound.enantiomerOfId":null,"controlDataExperiment.precipitantCompound.id":null,"controlDataExperiment.precipitantCompound.name":null,"controlDataExperiment.precipitantCompound.unii":null,"controlDataExperiment.precipitantCompound.inChIKey":null,"controlDataExperiment.precipitantCompound.publicDescription":null,"controlDataExperiment.precipitantCompound.internalComment":null,"controlDataExperiment.precipitantCompound.conceptId":null,"controlDataExperiment.precipitantCompound.enantiomerOfId":null,"controlDataExperiment.objectMetaboliteCompound.id":null,"controlDataExperiment.objectMetaboliteCompound.name":null,"controlDataExperiment.objectMetaboliteCompound.unii":null,"controlDataExperiment.objectMetaboliteCompound.inChIKey":null,"controlDataExperiment.objectMetaboliteCompound.publicDescriptio":null,"controlDataExperiment.objectMetaboliteCompound.internalComment":null,"controlDataExperiment.objectMetaboliteCompound.conceptId":null,"controlDataExperiment.objectMetaboliteCompound.enantiomerOfId":null,"controlDataExperiment.enzymes.id":null,"controlDataExperiment.enzymes.name":null,"controlDataExperiment.enzymes.conceptId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.enzymeId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.experiment":null,"controlDataExperiment.transporters.id":null,"controlDataExperiment.transporters.name":null,"controlDataExperiment.transporters.conceptId":null,"controlDataExperiment.transporters.experiment_transporter_xref.":null,"controlDataExperiment.quantifiedMetabolites.id":null,"controlDataExperiment.quantifiedMetabolites.name":null,"controlDataExperiment.quantifiedMetabolites.unii":null,"controlDataExperiment.quantifiedMetabolites.inChIKey":null,"controlDataExperiment.quantifiedMetabolites.publicDescription":null,"controlDataExperiment.quantifiedMetabolites.internalComment":null,"controlDataExperiment.quantifiedMetabolites.conceptId":null,"controlDataExperiment.quantifiedMetabolites.enantiomerOfId":null,"controlDataExperiment.quantifiedMetabolites.experiment_quantifi":null,"experimentAnswers.id":7054,"experimentAnswers.text":null,"experimentAnswers.answerId":706,"experimentAnswers.experimentId":297,"experimentAnswers.questionId":128,"experimentAnswers.question.id":128,"experimentAnswers.question.text":"Adverse 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis canadensis","study.naturalProduct.name":"Goldenseal","study.naturalProduct.itis":null,"study.naturalProduct.srs":"66690655-f406-4d67-96e3-2066aafee8d5","study.naturalProduct.source_id":"","study.naturalProduct.conceptId":null,"study.naturalProduct.concept.conceptId":null,"study.naturalProduct.concept.conceptName":null,"study.naturalProduct.concept.domainId":null,"study.naturalProduct.concept.vocabularyId":null,"study.naturalProduct.concept.conceptClassId":null,"study.naturalProduct.concept.standardConcept":null,"study.naturalProduct.concept.conceptCode":null,"study.naturalProduct.concept.validStartDate":null,"study.naturalProduct.concept.validEndDate":null,"study.naturalProduct.concept.invalid_reason":null,"study.compound.id":null,"study.compound.name":null,"study.compound.unii":null,"study.compound.inChIKey":null,"study.compound.publicDescription":null,"study.compound.internalComment":null,"study.compound.conceptId":null,"study.compound.enantiomerOfId":null,"study.studySourceType.id":1,"study.studySourceType.name":"Published report","testSystem.id":null,"testSystem.name":null,"testSystem.sortOrder":null,"testSystem.conceptId":null,"testSystem.categoryId":null,"testSystem.category.id":null,"testSystem.category.name":null,"testSystem.category.sortOrder":null,"testSystem.category.requiresCytochromeB5":null,"cytochromeB5.id":null,"cytochromeB5.name":null,"cytochromeB5.sortOrder":null,"cytochromeB5.conceptId":null,"controlDataExperiment.id":null,"controlDataExperiment.uid":null,"controlDataExperiment.name":null,"controlDataExperiment.overallEffect":null,"controlDataExperiment.isControlData":null,"controlDataExperiment.isIc50Shift":null,"controlDataExperiment.croCutoff":null,"controlDataExperiment.croIdentifier":null,"controlDataExperiment.comment":null,"controlDataExperiment.experimentalConditionsComment":null,"controlDataExperiment.resultsComment":null,"controlDataExperiment.internalComment":null,"controlDataExperiment.objectCompoundId":null,"controlDataExperiment.objectMetaboliteCompoundId":null,"controlDataExperiment.precipitantCompoundId":null,"controlDataExperiment.cytochromeB5Id":null,"controlDataExperiment.studyId":null,"controlDataExperiment.experimentTypeId":null,"controlDataExperiment.testSystemId":null,"controlDataExperiment.ic50ShiftExperimentId":null,"controlDataExperiment.controlDataExperimentId":null,"controlDataExperiment.controlDataForExperimentId":null,"controlDataExperiment.naturalProductSampleId":null,"controlDataExperiment.experimentType.id":null,"controlDataExperiment.experimentType.name":null,"controlDataExperiment.experimentType.isInVitro":null,"controlDataExperiment.experimentType.isTransporter":null,"controlDataExperiment.experimentType.isEnzyme":null,"controlDataExperiment.experimentType.purl":null,"controlDataExperiment.objectCompound.id":null,"controlDataExperiment.objectCompound.name":null,"controlDataExperiment.objectCompound.unii":null,"controlDataExperiment.objectCompound.inChIKey":null,"controlDataExperiment.objectCompound.publicDescription":null,"controlDataExperiment.objectCompound.internalComment":null,"controlDataExperiment.objectCompound.conceptId":null,"controlDataExperiment.objectCompound.enantiomerOfId":null,"controlDataExperiment.precipitantCompound.id":null,"controlDataExperiment.precipitantCompound.name":null,"controlDataExperiment.precipitantCompound.unii":null,"controlDataExperiment.precipitantCompound.inChIKey":null,"controlDataExperiment.precipitantCompound.publicDescription":null,"controlDataExperiment.precipitantCompound.internalComment":null,"controlDataExperiment.precipitantCompound.conceptId":null,"controlDataExperiment.precipitantCompound.enantiomerOfId":null,"controlDataExperiment.objectMetaboliteCompound.id":null,"controlDataExperiment.objectMetaboliteCompound.name":null,"controlDataExperiment.objectMetaboliteCompound.unii":null,"controlDataExperiment.objectMetaboliteCompound.inChIKey":null,"controlDataExperiment.objectMetaboliteCompound.publicDescriptio":null,"controlDataExperiment.objectMetaboliteCompound.internalComment":null,"controlDataExperiment.objectMetaboliteCompound.conceptId":null,"controlDataExperiment.objectMetaboliteCompound.enantiomerOfId":null,"controlDataExperiment.enzymes.id":null,"controlDataExperiment.enzymes.name":null,"controlDataExperiment.enzymes.conceptId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.enzymeId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.experiment":null,"controlDataExperiment.transporters.id":null,"controlDataExperiment.transporters.name":null,"controlDataExperiment.transporters.conceptId":null,"controlDataExperiment.transporters.experiment_transporter_xref.":null,"controlDataExperiment.quantifiedMetabolites.id":null,"controlDataExperiment.quantifiedMetabolites.name":null,"controlDataExperiment.quantifiedMetabolites.unii":null,"controlDataExperiment.quantifiedMetabolites.inChIKey":null,"controlDataExperiment.quantifiedMetabolites.publicDescription":null,"controlDataExperiment.quantifiedMetabolites.internalComment":null,"controlDataExperiment.quantifiedMetabolites.conceptId":null,"controlDataExperiment.quantifiedMetabolites.enantiomerOfId":null,"controlDataExperiment.quantifiedMetabolites.experiment_quantifi":null,"experimentAnswers.id":7054,"experimentAnswers.text":null,"experimentAnswers.answerId":706,"experimentAnswers.experimentId":297,"experimentAnswers.questionId":128,"experimentAnswers.question.id":128,"experimentAnswers.question.text":"Adverse event classes","experimentAnswers.question.required":false,"experimentAnswers.question.maxAnswers":100,"experimentAnswers.question.type":null,"experimentAnswers.question.conceptId":null,"experimentAnswers.question.answers.id":703,"experimentAnswers.question.answers.text":"Ear and labyrinth disorders","experimentAnswers.question.answers.sortOrder":null,"experimentAnswers.question.answers.conceptId":35400000,"experimentAnswers.question.answers.questionId":128,"experimentAnswers.answer.id":706,"experimentAnswers.answer.text":"Gastrointestinal disorders","experimentAnswers.answer.sortOrder":null,"experimentAnswers.answer.conceptId":35700000,"experimentAnswers.answer.questionId":128},{"id":297,"uid":"NPDI-Bi2fGw","name":"CYP3A4 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Interaction","experimentType.isInVitro":false,"experimentType.isTransporter":false,"experimentType.isEnzyme":false,"experimentType.purl":"http://purl.obolibrary.org/obo/DIDEO_00000071","objectCompound.id":26,"objectCompound.name":"midazolam","objectCompound.unii":"R60L0SM5BC","objectCompound.inChIKey":"DDLIGBOFAVUZHB-UHFFFAOYSA-N","objectCompound.publicDescription":null,"objectCompound.internalComment":null,"objectCompound.conceptId":708298,"objectCompound.enantiomerOfId":null,"objectCompound.concept.conceptId":708298,"objectCompound.concept.conceptName":"Midazolam","objectCompound.concept.domainId":"Drug","objectCompound.concept.vocabularyId":"RxNorm","objectCompound.concept.conceptClassId":"Ingredient","objectCompound.concept.standardConcept":"S","objectCompound.concept.conceptCode":"6960","objectCompound.concept.validStartDate":"1970-01-01T00:00:00.000Z","objectCompound.concept.validEndDate":"2099-12-31T00:00:00.000Z","objectCompound.concept.invalid_reason":null,"precipitantCompound.id":127,"precipitantCompound.name":"goldenseal root 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis 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event classes","experimentAnswers.question.required":false,"experimentAnswers.question.maxAnswers":100,"experimentAnswers.question.type":null,"experimentAnswers.question.conceptId":null,"experimentAnswers.question.answers.id":704,"experimentAnswers.question.answers.text":"Endocrine disorders","experimentAnswers.question.answers.sortOrder":null,"experimentAnswers.question.answers.conceptId":35500000,"experimentAnswers.question.answers.questionId":128,"experimentAnswers.answer.id":706,"experimentAnswers.answer.text":"Gastrointestinal disorders","experimentAnswers.answer.sortOrder":null,"experimentAnswers.answer.conceptId":35700000,"experimentAnswers.answer.questionId":128},{"id":297,"uid":"NPDI-Bi2fGw","name":"CYP3A4 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis canadensis","study.naturalProduct.name":"Goldenseal","study.naturalProduct.itis":null,"study.naturalProduct.srs":"66690655-f406-4d67-96e3-2066aafee8d5","study.naturalProduct.source_id":"","study.naturalProduct.conceptId":null,"study.naturalProduct.concept.conceptId":null,"study.naturalProduct.concept.conceptName":null,"study.naturalProduct.concept.domainId":null,"study.naturalProduct.concept.vocabularyId":null,"study.naturalProduct.concept.conceptClassId":null,"study.naturalProduct.concept.standardConcept":null,"study.naturalProduct.concept.conceptCode":null,"study.naturalProduct.concept.validStartDate":null,"study.naturalProduct.concept.validEndDate":null,"study.naturalProduct.concept.invalid_reason":null,"study.compound.id":null,"study.compound.name":null,"study.compound.unii":null,"study.compound.inChIKey":null,"study.compound.publicDescription":null,"study.compound.internalComment":null,"study.compound.conceptId":null,"study.compound.enantiomerOfId":null,"study.studySourceType.id":1,"study.studySourceType.name":"Published report","testSystem.id":null,"testSystem.name":null,"testSystem.sortOrder":null,"testSystem.conceptId":null,"testSystem.categoryId":null,"testSystem.category.id":null,"testSystem.category.name":null,"testSystem.category.sortOrder":null,"testSystem.category.requiresCytochromeB5":null,"cytochromeB5.id":null,"cytochromeB5.name":null,"cytochromeB5.sortOrder":null,"cytochromeB5.conceptId":null,"controlDataExperiment.id":null,"controlDataExperiment.uid":null,"controlDataExperiment.name":null,"controlDataExperiment.overallEffect":null,"controlDataExperiment.isControlData":null,"controlDataExperiment.isIc50Shift":null,"controlDataExperiment.croCutoff":null,"controlDataExperiment.croIdentifier":null,"controlDataExperiment.comment":null,"controlDataExperiment.experimentalConditionsComment":null,"controlDataExperiment.resultsComment":null,"controlDataExperiment.internalComment":null,"controlDataExperiment.objectCompoundId":null,"controlDataExperiment.objectMetaboliteCompoundId":null,"controlDataExperiment.precipitantCompoundId":null,"controlDataExperiment.cytochromeB5Id":null,"controlDataExperiment.studyId":null,"controlDataExperiment.experimentTypeId":null,"controlDataExperiment.testSystemId":null,"controlDataExperiment.ic50ShiftExperimentId":null,"controlDataExperiment.controlDataExperimentId":null,"controlDataExperiment.controlDataForExperimentId":null,"controlDataExperiment.naturalProductSampleId":null,"controlDataExperiment.experimentType.id":null,"controlDataExperiment.experimentType.name":null,"controlDataExperiment.experimentType.isInVitro":null,"controlDataExperiment.experimentType.isTransporter":null,"controlDataExperiment.experimentType.isEnzyme":null,"controlDataExperiment.experimentType.purl":null,"controlDataExperiment.objectCompound.id":null,"controlDataExperiment.objectCompound.name":null,"controlDataExperiment.objectCompound.unii":null,"controlDataExperiment.objectCompound.inChIKey":null,"controlDataExperiment.objectCompound.publicDescription":null,"controlDataExperiment.objectCompound.internalComment":null,"controlDataExperiment.objectCompound.conceptId":null,"controlDataExperiment.objectCompound.enantiomerOfId":null,"controlDataExperiment.precipitantCompound.id":null,"controlDataExperiment.precipitantCompound.name":null,"controlDataExperiment.precipitantCompound.unii":null,"controlDataExperiment.precipitantCompound.inChIKey":null,"controlDataExperiment.precipitantCompound.publicDescription":null,"controlDataExperiment.precipitantCompound.internalComment":null,"controlDataExperiment.precipitantCompound.conceptId":null,"controlDataExperiment.precipitantCompound.enantiomerOfId":null,"controlDataExperiment.objectMetaboliteCompound.id":null,"controlDataExperiment.objectMetaboliteCompound.name":null,"controlDataExperiment.objectMetaboliteCompound.unii":null,"controlDataExperiment.objectMetaboliteCompound.inChIKey":null,"controlDataExperiment.objectMetaboliteCompound.publicDescriptio":null,"controlDataExperiment.objectMetaboliteCompound.internalComment":null,"controlDataExperiment.objectMetaboliteCompound.conceptId":null,"controlDataExperiment.objectMetaboliteCompound.enantiomerOfId":null,"controlDataExperiment.enzymes.id":null,"controlDataExperiment.enzymes.name":null,"controlDataExperiment.enzymes.conceptId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.enzymeId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.experiment":null,"controlDataExperiment.transporters.id":null,"controlDataExperiment.transporters.name":null,"controlDataExperiment.transporters.conceptId":null,"controlDataExperiment.transporters.experiment_transporter_xref.":null,"controlDataExperiment.quantifiedMetabolites.id":null,"controlDataExperiment.quantifiedMetabolites.name":null,"controlDataExperiment.quantifiedMetabolites.unii":null,"controlDataExperiment.quantifiedMetabolites.inChIKey":null,"controlDataExperiment.quantifiedMetabolites.publicDescription":null,"controlDataExperiment.quantifiedMetabolites.internalComment":null,"controlDataExperiment.quantifiedMetabolites.conceptId":null,"controlDataExperiment.quantifiedMetabolites.enantiomerOfId":null,"controlDataExperiment.quantifiedMetabolites.experiment_quantifi":null,"experimentAnswers.id":7054,"experimentAnswers.text":null,"experimentAnswers.answerId":706,"experimentAnswers.experimentId":297,"experimentAnswers.questionId":128,"experimentAnswers.question.id":128,"experimentAnswers.question.text":"Adverse event classes","experimentAnswers.question.required":false,"experimentAnswers.question.maxAnswers":100,"experimentAnswers.question.type":null,"experimentAnswers.question.conceptId":null,"experimentAnswers.question.answers.id":705,"experimentAnswers.question.answers.text":"Eye disorders","experimentAnswers.question.answers.sortOrder":null,"experimentAnswers.question.answers.conceptId":35600000,"experimentAnswers.question.answers.questionId":128,"experimentAnswers.answer.id":706,"experimentAnswers.answer.text":"Gastrointestinal disorders","experimentAnswers.answer.sortOrder":null,"experimentAnswers.answer.conceptId":35700000,"experimentAnswers.answer.questionId":128},{"id":297,"uid":"NPDI-Bi2fGw","name":"CYP3A4 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Interaction","experimentType.isInVitro":false,"experimentType.isTransporter":false,"experimentType.isEnzyme":false,"experimentType.purl":"http://purl.obolibrary.org/obo/DIDEO_00000071","objectCompound.id":26,"objectCompound.name":"midazolam","objectCompound.unii":"R60L0SM5BC","objectCompound.inChIKey":"DDLIGBOFAVUZHB-UHFFFAOYSA-N","objectCompound.publicDescription":null,"objectCompound.internalComment":null,"objectCompound.conceptId":708298,"objectCompound.enantiomerOfId":null,"objectCompound.concept.conceptId":708298,"objectCompound.concept.conceptName":"Midazolam","objectCompound.concept.domainId":"Drug","objectCompound.concept.vocabularyId":"RxNorm","objectCompound.concept.conceptClassId":"Ingredient","objectCompound.concept.standardConcept":"S","objectCompound.concept.conceptCode":"6960","objectCompound.concept.validStartDate":"1970-01-01T00:00:00.000Z","objectCompound.concept.validEndDate":"2099-12-31T00:00:00.000Z","objectCompound.concept.invalid_reason":null,"precipitantCompound.id":127,"precipitantCompound.name":"goldenseal 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis canadensis","study.naturalProduct.name":"Goldenseal","study.naturalProduct.itis":null,"study.naturalProduct.srs":"66690655-f406-4d67-96e3-2066aafee8d5","study.naturalProduct.source_id":"","study.naturalProduct.conceptId":null,"study.naturalProduct.concept.conceptId":null,"study.naturalProduct.concept.conceptName":null,"study.naturalProduct.concept.domainId":null,"study.naturalProduct.concept.vocabularyId":null,"study.naturalProduct.concept.conceptClassId":null,"study.naturalProduct.concept.standardConcept":null,"study.naturalProduct.concept.conceptCode":null,"study.naturalProduct.concept.validStartDate":null,"study.naturalProduct.concept.validEndDate":null,"study.naturalProduct.concept.invalid_reason":null,"study.compound.id":null,"study.compound.name":null,"study.compound.unii":null,"study.compound.inChIKey":null,"study.compound.publicDescription":null,"study.compound.internalComment":null,"study.compound.conceptId":null,"study.compound.enantiomerOfId":null,"study.studySourceType.id":1,"study.studySourceType.name":"Published report","testSystem.id":null,"testSystem.name":null,"testSystem.sortOrder":null,"testSystem.conceptId":null,"testSystem.categoryId":null,"testSystem.category.id":null,"testSystem.category.name":null,"testSystem.category.sortOrder":null,"testSystem.category.requiresCytochromeB5":null,"cytochromeB5.id":null,"cytochromeB5.name":null,"cytochromeB5.sortOrder":null,"cytochromeB5.conceptId":null,"controlDataExperiment.id":null,"controlDataExperiment.uid":null,"controlDataExperiment.name":null,"controlDataExperiment.overallEffect":null,"controlDataExperiment.isControlData":null,"controlDataExperiment.isIc50Shift":null,"controlDataExperiment.croCutoff":null,"controlDataExperiment.croIdentifier":null,"controlDataExperiment.comment":null,"controlDataExperiment.experimentalConditionsComment":null,"controlDataExperiment.resultsComment":null,"controlDataExperiment.internalComment":null,"controlDataExperiment.objectCompoundId":null,"controlDataExperiment.objectMetaboliteCompoundId":null,"controlDataExperiment.precipitantCompoundId":null,"controlDataExperiment.cytochromeB5Id":null,"controlDataExperiment.studyId":null,"controlDataExperiment.experimentTypeId":null,"controlDataExperiment.testSystemId":null,"controlDataExperiment.ic50ShiftExperimentId":null,"controlDataExperiment.controlDataExperimentId":null,"controlDataExperiment.controlDataForExperimentId":null,"controlDataExperiment.naturalProductSampleId":null,"controlDataExperiment.experimentType.id":null,"controlDataExperiment.experimentType.name":null,"controlDataExperiment.experimentType.isInVitro":null,"controlDataExperiment.experimentType.isTransporter":null,"controlDataExperiment.experimentType.isEnzyme":null,"controlDataExperiment.experimentType.purl":null,"controlDataExperiment.objectCompound.id":null,"controlDataExperiment.objectCompound.name":null,"controlDataExperiment.objectCompound.unii":null,"controlDataExperiment.objectCompound.inChIKey":null,"controlDataExperiment.objectCompound.publicDescription":null,"controlDataExperiment.objectCompound.internalComment":null,"controlDataExperiment.objectCompound.conceptId":null,"controlDataExperiment.objectCompound.enantiomerOfId":null,"controlDataExperiment.precipitantCompound.id":null,"controlDataExperiment.precipitantCompound.name":null,"controlDataExperiment.precipitantCompound.unii":null,"controlDataExperiment.precipitantCompound.inChIKey":null,"controlDataExperiment.precipitantCompound.publicDescription":null,"controlDataExperiment.precipitantCompound.internalComment":null,"controlDataExperiment.precipitantCompound.conceptId":null,"controlDataExperiment.precipitantCompound.enantiomerOfId":null,"controlDataExperiment.objectMetaboliteCompound.id":null,"controlDataExperiment.objectMetaboliteCompound.name":null,"controlDataExperiment.objectMetaboliteCompound.unii":null,"controlDataExperiment.objectMetaboliteCompound.inChIKey":null,"controlDataExperiment.objectMetaboliteCompound.publicDescriptio":null,"controlDataExperiment.objectMetaboliteCompound.internalComment":null,"controlDataExperiment.objectMetaboliteCompound.conceptId":null,"controlDataExperiment.objectMetaboliteCompound.enantiomerOfId":null,"controlDataExperiment.enzymes.id":null,"controlDataExperiment.enzymes.name":null,"controlDataExperiment.enzymes.conceptId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.enzymeId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.experiment":null,"controlDataExperiment.transporters.id":null,"controlDataExperiment.transporters.name":null,"controlDataExperiment.transporters.conceptId":null,"controlDataExperiment.transporters.experiment_transporter_xref.":null,"controlDataExperiment.quantifiedMetabolites.id":null,"controlDataExperiment.quantifiedMetabolites.name":null,"controlDataExperiment.quantifiedMetabolites.unii":null,"controlDataExperiment.quantifiedMetabolites.inChIKey":null,"controlDataExperiment.quantifiedMetabolites.publicDescription":null,"controlDataExperiment.quantifiedMetabolites.internalComment":null,"controlDataExperiment.quantifiedMetabolites.conceptId":null,"controlDataExperiment.quantifiedMetabolites.enantiomerOfId":null,"controlDataExperiment.quantifiedMetabolites.experiment_quantifi":null,"experimentAnswers.id":7054,"experimentAnswers.text":null,"experimentAnswers.answerId":706,"experimentAnswers.experimentId":297,"experimentAnswers.questionId":128,"experimentAnswers.question.id":128,"experimentAnswers.question.text":"Adverse event classes","experimentAnswers.question.required":false,"experimentAnswers.question.maxAnswers":100,"experimentAnswers.question.type":null,"experimentAnswers.question.conceptId":null,"experimentAnswers.question.answers.id":707,"experimentAnswers.question.answers.text":"General disorders and administration site conditions","experimentAnswers.question.answers.sortOrder":null,"experimentAnswers.question.answers.conceptId":35800000,"experimentAnswers.question.answers.questionId":128,"experimentAnswers.answer.id":706,"experimentAnswers.answer.text":"Gastrointestinal disorders","experimentAnswers.answer.sortOrder":null,"experimentAnswers.answer.conceptId":35700000,"experimentAnswers.answer.questionId":128},{"id":297,"uid":"NPDI-Bi2fGw","name":"CYP3A4 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Interaction","experimentType.isInVitro":false,"experimentType.isTransporter":false,"experimentType.isEnzyme":false,"experimentType.purl":"http://purl.obolibrary.org/obo/DIDEO_00000071","objectCompound.id":26,"objectCompound.name":"midazolam","objectCompound.unii":"R60L0SM5BC","objectCompound.inChIKey":"DDLIGBOFAVUZHB-UHFFFAOYSA-N","objectCompound.publicDescription":null,"objectCompound.internalComment":null,"objectCompound.conceptId":708298,"objectCompound.enantiomerOfId":null,"objectCompound.concept.conceptId":708298,"objectCompound.concept.conceptName":"Midazolam","objectCompound.concept.domainId":"Drug","objectCompound.concept.vocabularyId":"RxNorm","objectCompound.concept.conceptClassId":"Ingredient","objectCompound.concept.standardConcept":"S","objectCompound.concept.conceptCode":"6960","objectCompound.concept.validStartDate":"1970-01-01T00:00:00.000Z","objectCompound.concept.validEndDate":"2099-12-31T00:00:00.000Z","objectCompound.concept.invalid_reason":null,"precipitantCompound.id":127,"precipitantCompound.name":"goldenseal 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis 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Interaction","experimentType.isInVitro":false,"experimentType.isTransporter":false,"experimentType.isEnzyme":false,"experimentType.purl":"http://purl.obolibrary.org/obo/DIDEO_00000071","objectCompound.id":26,"objectCompound.name":"midazolam","objectCompound.unii":"R60L0SM5BC","objectCompound.inChIKey":"DDLIGBOFAVUZHB-UHFFFAOYSA-N","objectCompound.publicDescription":null,"objectCompound.internalComment":null,"objectCompound.conceptId":708298,"objectCompound.enantiomerOfId":null,"objectCompound.concept.conceptId":708298,"objectCompound.concept.conceptName":"Midazolam","objectCompound.concept.domainId":"Drug","objectCompound.concept.vocabularyId":"RxNorm","objectCompound.concept.conceptClassId":"Ingredient","objectCompound.concept.standardConcept":"S","objectCompound.concept.conceptCode":"6960","objectCompound.concept.validStartDate":"1970-01-01T00:00:00.000Z","objectCompound.concept.validEndDate":"2099-12-31T00:00:00.000Z","objectCompound.concept.invalid_reason":null,"precipitantCompound.id":127,"precipitantCompound.name":"goldenseal 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis 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event classes","experimentAnswers.question.required":false,"experimentAnswers.question.maxAnswers":100,"experimentAnswers.question.type":null,"experimentAnswers.question.conceptId":null,"experimentAnswers.question.answers.id":710,"experimentAnswers.question.answers.text":"Infections and infestations","experimentAnswers.question.answers.sortOrder":null,"experimentAnswers.question.answers.conceptId":36100000,"experimentAnswers.question.answers.questionId":128,"experimentAnswers.answer.id":706,"experimentAnswers.answer.text":"Gastrointestinal disorders","experimentAnswers.answer.sortOrder":null,"experimentAnswers.answer.conceptId":35700000,"experimentAnswers.answer.questionId":128},{"id":297,"uid":"NPDI-Bi2fGw","name":"CYP3A4 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Interaction","experimentType.isInVitro":false,"experimentType.isTransporter":false,"experimentType.isEnzyme":false,"experimentType.purl":"http://purl.obolibrary.org/obo/DIDEO_00000071","objectCompound.id":26,"objectCompound.name":"midazolam","objectCompound.unii":"R60L0SM5BC","objectCompound.inChIKey":"DDLIGBOFAVUZHB-UHFFFAOYSA-N","objectCompound.publicDescription":null,"objectCompound.internalComment":null,"objectCompound.conceptId":708298,"objectCompound.enantiomerOfId":null,"objectCompound.concept.conceptId":708298,"objectCompound.concept.conceptName":"Midazolam","objectCompound.concept.domainId":"Drug","objectCompound.concept.vocabularyId":"RxNorm","objectCompound.concept.conceptClassId":"Ingredient","objectCompound.concept.standardConcept":"S","objectCompound.concept.conceptCode":"6960","objectCompound.concept.validStartDate":"1970-01-01T00:00:00.000Z","objectCompound.concept.validEndDate":"2099-12-31T00:00:00.000Z","objectCompound.concept.invalid_reason":null,"precipitantCompound.id":127,"precipitantCompound.name":"goldenseal root 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis canadensis","study.naturalProduct.name":"Goldenseal","study.naturalProduct.itis":null,"study.naturalProduct.srs":"66690655-f406-4d67-96e3-2066aafee8d5","study.naturalProduct.source_id":"","study.naturalProduct.conceptId":null,"study.naturalProduct.concept.conceptId":null,"study.naturalProduct.concept.conceptName":null,"study.naturalProduct.concept.domainId":null,"study.naturalProduct.concept.vocabularyId":null,"study.naturalProduct.concept.conceptClassId":null,"study.naturalProduct.concept.standardConcept":null,"study.naturalProduct.concept.conceptCode":null,"study.naturalProduct.concept.validStartDate":null,"study.naturalProduct.concept.validEndDate":null,"study.naturalProduct.concept.invalid_reason":null,"study.compound.id":null,"study.compound.name":null,"study.compound.unii":null,"study.compound.inChIKey":null,"study.compound.publicDescription":null,"study.compound.internalComment":null,"study.compound.conceptId":null,"study.compound.enantiomerOfId":null,"study.studySourceType.id":1,"study.studySourceType.name":"Published report","testSystem.id":null,"testSystem.name":null,"testSystem.sortOrder":null,"testSystem.conceptId":null,"testSystem.categoryId":null,"testSystem.category.id":null,"testSystem.category.name":null,"testSystem.category.sortOrder":null,"testSystem.category.requiresCytochromeB5":null,"cytochromeB5.id":null,"cytochromeB5.name":null,"cytochromeB5.sortOrder":null,"cytochromeB5.conceptId":null,"controlDataExperiment.id":null,"controlDataExperiment.uid":null,"controlDataExperiment.name":null,"controlDataExperiment.overallEffect":null,"controlDataExperiment.isControlData":null,"controlDataExperiment.isIc50Shift":null,"controlDataExperiment.croCutoff":null,"controlDataExperiment.croIdentifier":null,"controlDataExperiment.comment":null,"controlDataExperiment.experimentalConditionsComment":null,"controlDataExperiment.resultsComment":null,"controlDataExperiment.internalComment":null,"controlDataExperiment.objectCompoundId":null,"controlDataExperiment.objectMetaboliteCompoundId":null,"controlDataExperiment.precipitantCompoundId":null,"controlDataExperiment.cytochromeB5Id":null,"controlDataExperiment.studyId":null,"controlDataExperiment.experimentTypeId":null,"controlDataExperiment.testSystemId":null,"controlDataExperiment.ic50ShiftExperimentId":null,"controlDataExperiment.controlDataExperimentId":null,"controlDataExperiment.controlDataForExperimentId":null,"controlDataExperiment.naturalProductSampleId":null,"controlDataExperiment.experimentType.id":null,"controlDataExperiment.experimentType.name":null,"controlDataExperiment.experimentType.isInVitro":null,"controlDataExperiment.experimentType.isTransporter":null,"controlDataExperiment.experimentType.isEnzyme":null,"controlDataExperiment.experimentType.purl":null,"controlDataExperiment.objectCompound.id":null,"controlDataExperiment.objectCompound.name":null,"controlDataExperiment.objectCompound.unii":null,"controlDataExperiment.objectCompound.inChIKey":null,"controlDataExperiment.objectCompound.publicDescription":null,"controlDataExperiment.objectCompound.internalComment":null,"controlDataExperiment.objectCompound.conceptId":null,"controlDataExperiment.objectCompound.enantiomerOfId":null,"controlDataExperiment.precipitantCompound.id":null,"controlDataExperiment.precipitantCompound.name":null,"controlDataExperiment.precipitantCompound.unii":null,"controlDataExperiment.precipitantCompound.inChIKey":null,"controlDataExperiment.precipitantCompound.publicDescription":null,"controlDataExperiment.precipitantCompound.internalComment":null,"controlDataExperiment.precipitantCompound.conceptId":null,"controlDataExperiment.precipitantCompound.enantiomerOfId":null,"controlDataExperiment.objectMetaboliteCompound.id":null,"controlDataExperiment.objectMetaboliteCompound.name":null,"controlDataExperiment.objectMetaboliteCompound.unii":null,"controlDataExperiment.objectMetaboliteCompound.inChIKey":null,"controlDataExperiment.objectMetaboliteCompound.publicDescriptio":null,"controlDataExperiment.objectMetaboliteCompound.internalComment":null,"controlDataExperiment.objectMetaboliteCompound.conceptId":null,"controlDataExperiment.objectMetaboliteCompound.enantiomerOfId":null,"controlDataExperiment.enzymes.id":null,"controlDataExperiment.enzymes.name":null,"controlDataExperiment.enzymes.conceptId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.enzymeId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.experiment":null,"controlDataExperiment.transporters.id":null,"controlDataExperiment.transporters.name":null,"controlDataExperiment.transporters.conceptId":null,"controlDataExperiment.transporters.experiment_transporter_xref.":null,"controlDataExperiment.quantifiedMetabolites.id":null,"controlDataExperiment.quantifiedMetabolites.name":null,"controlDataExperiment.quantifiedMetabolites.unii":null,"controlDataExperiment.quantifiedMetabolites.inChIKey":null,"controlDataExperiment.quantifiedMetabolites.publicDescription":null,"controlDataExperiment.quantifiedMetabolites.internalComment":null,"controlDataExperiment.quantifiedMetabolites.conceptId":null,"controlDataExperiment.quantifiedMetabolites.enantiomerOfId":null,"controlDataExperiment.quantifiedMetabolites.experiment_quantifi":null,"experimentAnswers.id":7054,"experimentAnswers.text":null,"experimentAnswers.answerId":706,"experimentAnswers.experimentId":297,"experimentAnswers.questionId":128,"experimentAnswers.question.id":128,"experimentAnswers.question.text":"Adverse event classes","experimentAnswers.question.required":false,"experimentAnswers.question.maxAnswers":100,"experimentAnswers.question.type":null,"experimentAnswers.question.conceptId":null,"experimentAnswers.question.answers.id":711,"experimentAnswers.question.answers.text":"Injury, poisoning and procedural complications","experimentAnswers.question.answers.sortOrder":null,"experimentAnswers.question.answers.conceptId":36200000,"experimentAnswers.question.answers.questionId":128,"experimentAnswers.answer.id":706,"experimentAnswers.answer.text":"Gastrointestinal disorders","experimentAnswers.answer.sortOrder":null,"experimentAnswers.answer.conceptId":35700000,"experimentAnswers.answer.questionId":128},{"id":297,"uid":"NPDI-Bi2fGw","name":"CYP3A4 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Interaction","experimentType.isInVitro":false,"experimentType.isTransporter":false,"experimentType.isEnzyme":false,"experimentType.purl":"http://purl.obolibrary.org/obo/DIDEO_00000071","objectCompound.id":26,"objectCompound.name":"midazolam","objectCompound.unii":"R60L0SM5BC","objectCompound.inChIKey":"DDLIGBOFAVUZHB-UHFFFAOYSA-N","objectCompound.publicDescription":null,"objectCompound.internalComment":null,"objectCompound.conceptId":708298,"objectCompound.enantiomerOfId":null,"objectCompound.concept.conceptId":708298,"objectCompound.concept.conceptName":"Midazolam","objectCompound.concept.domainId":"Drug","objectCompound.concept.vocabularyId":"RxNorm","objectCompound.concept.conceptClassId":"Ingredient","objectCompound.concept.standardConcept":"S","objectCompound.concept.conceptCode":"6960","objectCompound.concept.validStartDate":"1970-01-01T00:00:00.000Z","objectCompound.concept.validEndDate":"2099-12-31T00:00:00.000Z","objectCompound.concept.invalid_reason":null,"precipitantCompound.id":127,"precipitantCompound.name":"goldenseal 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis canadensis","study.naturalProduct.name":"Goldenseal","study.naturalProduct.itis":null,"study.naturalProduct.srs":"66690655-f406-4d67-96e3-2066aafee8d5","study.naturalProduct.source_id":"","study.naturalProduct.conceptId":null,"study.naturalProduct.concept.conceptId":null,"study.naturalProduct.concept.conceptName":null,"study.naturalProduct.concept.domainId":null,"study.naturalProduct.concept.vocabularyId":null,"study.naturalProduct.concept.conceptClassId":null,"study.naturalProduct.concept.standardConcept":null,"study.naturalProduct.concept.conceptCode":null,"study.naturalProduct.concept.validStartDate":null,"study.naturalProduct.concept.validEndDate":null,"study.naturalProduct.concept.invalid_reason":null,"study.compound.id":null,"study.compound.name":null,"study.compound.unii":null,"study.compound.inChIKey":null,"study.compound.publicDescription":null,"study.compound.internalComment":null,"study.compound.conceptId":null,"study.compound.enantiomerOfId":null,"study.studySourceType.id":1,"study.studySourceType.name":"Published report","testSystem.id":null,"testSystem.name":null,"testSystem.sortOrder":null,"testSystem.conceptId":null,"testSystem.categoryId":null,"testSystem.category.id":null,"testSystem.category.name":null,"testSystem.category.sortOrder":null,"testSystem.category.requiresCytochromeB5":null,"cytochromeB5.id":null,"cytochromeB5.name":null,"cytochromeB5.sortOrder":null,"cytochromeB5.conceptId":null,"controlDataExperiment.id":null,"controlDataExperiment.uid":null,"controlDataExperiment.name":null,"controlDataExperiment.overallEffect":null,"controlDataExperiment.isControlData":null,"controlDataExperiment.isIc50Shift":null,"controlDataExperiment.croCutoff":null,"controlDataExperiment.croIdentifier":null,"controlDataExperiment.comment":null,"controlDataExperiment.experimentalConditionsComment":null,"controlDataExperiment.resultsComment":null,"controlDataExperiment.internalComment":null,"controlDataExperiment.objectCompoundId":null,"controlDataExperiment.objectMetaboliteCompoundId":null,"controlDataExperiment.precipitantCompoundId":null,"controlDataExperiment.cytochromeB5Id":null,"controlDataExperiment.studyId":null,"controlDataExperiment.experimentTypeId":null,"controlDataExperiment.testSystemId":null,"controlDataExperiment.ic50ShiftExperimentId":null,"controlDataExperiment.controlDataExperimentId":null,"controlDataExperiment.controlDataForExperimentId":null,"controlDataExperiment.naturalProductSampleId":null,"controlDataExperiment.experimentType.id":null,"controlDataExperiment.experimentType.name":null,"controlDataExperiment.experimentType.isInVitro":null,"controlDataExperiment.experimentType.isTransporter":null,"controlDataExperiment.experimentType.isEnzyme":null,"controlDataExperiment.experimentType.purl":null,"controlDataExperiment.objectCompound.id":null,"controlDataExperiment.objectCompound.name":null,"controlDataExperiment.objectCompound.unii":null,"controlDataExperiment.objectCompound.inChIKey":null,"controlDataExperiment.objectCompound.publicDescription":null,"controlDataExperiment.objectCompound.internalComment":null,"controlDataExperiment.objectCompound.conceptId":null,"controlDataExperiment.objectCompound.enantiomerOfId":null,"controlDataExperiment.precipitantCompound.id":null,"controlDataExperiment.precipitantCompound.name":null,"controlDataExperiment.precipitantCompound.unii":null,"controlDataExperiment.precipitantCompound.inChIKey":null,"controlDataExperiment.precipitantCompound.publicDescription":null,"controlDataExperiment.precipitantCompound.internalComment":null,"controlDataExperiment.precipitantCompound.conceptId":null,"controlDataExperiment.precipitantCompound.enantiomerOfId":null,"controlDataExperiment.objectMetaboliteCompound.id":null,"controlDataExperiment.objectMetaboliteCompound.name":null,"controlDataExperiment.objectMetaboliteCompound.unii":null,"controlDataExperiment.objectMetaboliteCompound.inChIKey":null,"controlDataExperiment.objectMetaboliteCompound.publicDescriptio":null,"controlDataExperiment.objectMetaboliteCompound.internalComment":null,"controlDataExperiment.objectMetaboliteCompound.conceptId":null,"controlDataExperiment.objectMetaboliteCompound.enantiomerOfId":null,"controlDataExperiment.enzymes.id":null,"controlDataExperiment.enzymes.name":null,"controlDataExperiment.enzymes.conceptId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.enzymeId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.experiment":null,"controlDataExperiment.transporters.id":null,"controlDataExperiment.transporters.name":null,"controlDataExperiment.transporters.conceptId":null,"controlDataExperiment.transporters.experiment_transporter_xref.":null,"controlDataExperiment.quantifiedMetabolites.id":null,"controlDataExperiment.quantifiedMetabolites.name":null,"controlDataExperiment.quantifiedMetabolites.unii":null,"controlDataExperiment.quantifiedMetabolites.inChIKey":null,"controlDataExperiment.quantifiedMetabolites.publicDescription":null,"controlDataExperiment.quantifiedMetabolites.internalComment":null,"controlDataExperiment.quantifiedMetabolites.conceptId":null,"controlDataExperiment.quantifiedMetabolites.enantiomerOfId":null,"controlDataExperiment.quantifiedMetabolites.experiment_quantifi":null,"experimentAnswers.id":7054,"experimentAnswers.text":null,"experimentAnswers.answerId":706,"experimentAnswers.experimentId":297,"experimentAnswers.questionId":128,"experimentAnswers.question.id":128,"experimentAnswers.question.text":"Adverse event classes","experimentAnswers.question.required":false,"experimentAnswers.question.maxAnswers":100,"experimentAnswers.question.type":null,"experimentAnswers.question.conceptId":null,"experimentAnswers.question.answers.id":712,"experimentAnswers.question.answers.text":"Investigations","experimentAnswers.question.answers.sortOrder":null,"experimentAnswers.question.answers.conceptId":36300000,"experimentAnswers.question.answers.questionId":128,"experimentAnswers.answer.id":706,"experimentAnswers.answer.text":"Gastrointestinal disorders","experimentAnswers.answer.sortOrder":null,"experimentAnswers.answer.conceptId":35700000,"experimentAnswers.answer.questionId":128},{"id":297,"uid":"NPDI-Bi2fGw","name":"CYP3A4 Experiment","overallEffect":1,"isControlData":false,"isIc50Shift":false,"croCutoff":null,"croIdentifier":null,"comment":null,"experimentalConditionsComment":null,"resultsComment":null,"internalComment":null,"objectCompoundId":26,"objectMetaboliteCompoundId":null,"precipitantCompoundId":127,"cytochromeB5Id":null,"studyId":73,"experimentTypeId":9,"testSystemId":null,"ic50ShiftExperimentId":null,"controlDataExperimentId":null,"controlDataForExperimentId":null,"naturalProductSampleId":null,"experimentType.id":9,"experimentType.name":"In Vivo Interaction","experimentType.isInVitro":false,"experimentType.isTransporter":false,"experimentType.isEnzyme":false,"experimentType.purl":"http://purl.obolibrary.org/obo/DIDEO_00000071","objectCompound.id":26,"objectCompound.name":"midazolam","objectCompound.unii":"R60L0SM5BC","objectCompound.inChIKey":"DDLIGBOFAVUZHB-UHFFFAOYSA-N","objectCompound.publicDescription":null,"objectCompound.internalComment":null,"objectCompound.conceptId":708298,"objectCompound.enantiomerOfId":null,"objectCompound.concept.conceptId":708298,"objectCompound.concept.conceptName":"Midazolam","objectCompound.concept.domainId":"Drug","objectCompound.concept.vocabularyId":"RxNorm","objectCompound.concept.conceptClassId":"Ingredient","objectCompound.concept.standardConcept":"S","objectCompound.concept.conceptCode":"6960","objectCompound.concept.validStartDate":"1970-01-01T00:00:00.000Z","objectCompound.concept.validEndDate":"2099-12-31T00:00:00.000Z","objectCompound.concept.invalid_reason":null,"precipitantCompound.id":127,"precipitantCompound.name":"goldenseal root extract","precipitantCompound.unii":null,"precipitantCompound.inChIKey":null,"precipitantCompound.publicDescription":null,"precipitantCompound.internalComment":null,"precipitantCompound.conceptId":null,"precipitantCompound.enantiomerOfId":null,"precipitantCompound.concept.conceptId":null,"precipitantCompound.concept.conceptName":null,"precipitantCompound.concept.domainId":null,"precipitantCompound.concept.vocabularyId":null,"precipitantCompound.concept.conceptClassId":null,"precipitantCompound.concept.standardConcept":null,"precipitantCompound.concept.conceptCode":null,"precipitantCompound.concept.validStartDate":null,"precipitantCompound.concept.validEndDate":null,"precipitantCompound.concept.invalid_reason":null,"objectMetaboliteCompound.id":null,"objectMetaboliteCompound.name":null,"objectMetaboliteCompound.unii":null,"objectMetaboliteCompound.inChIKey":null,"objectMetaboliteCompound.publicDescription":null,"objectMetaboliteCompound.internalComment":null,"objectMetaboliteCompound.conceptId":null,"objectMetaboliteCompound.enantiomerOfId":null,"objectMetaboliteCompound.concept.conceptId":null,"objectMetaboliteCompound.concept.conceptName":null,"objectMetaboliteCompound.concept.domainId":null,"objectMetaboliteCompound.concept.vocabularyId":null,"objectMetaboliteCompound.concept.conceptClassId":null,"objectMetaboliteCompound.concept.standardConcept":null,"objectMetaboliteCompound.concept.conceptCode":null,"objectMetaboliteCompound.concept.validStartDate":null,"objectMetaboliteCompound.concept.validEndDate":null,"objectMetaboliteCompound.concept.invalid_reason":null,"enzymes.id":13,"enzymes.name":"CYP3A4","enzymes.conceptId":4306811,"enzymes.experiment_enzyme_xref.enzymeId":13,"enzymes.experiment_enzyme_xref.experimentId":297,"transporters.id":null,"transporters.name":null,"transporters.conceptId":null,"transporters.experiment_transporter_xref.experimentId":null,"transporters.experiment_transporter_xref.transporterId":null,"quantifiedMetabolites.id":null,"quantifiedMetabolites.name":null,"quantifiedMetabolites.unii":null,"quantifiedMetabolites.inChIKey":null,"quantifiedMetabolites.publicDescription":null,"quantifiedMetabolites.internalComment":null,"quantifiedMetabolites.conceptId":null,"quantifiedMetabolites.enantiomerOfId":null,"quantifiedMetabolites.experiment_quantified_metabolite_xref.com":null,"quantifiedMetabolites.experiment_quantified_metabolite_xref.exp":null,"study.id":73,"study.uid":"NPDI-ftEv0g","study.name":"In vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis canadensis","study.naturalProduct.name":"Goldenseal","study.naturalProduct.itis":null,"study.naturalProduct.srs":"66690655-f406-4d67-96e3-2066aafee8d5","study.naturalProduct.source_id":"","study.naturalProduct.conceptId":null,"study.naturalProduct.concept.conceptId":null,"study.naturalProduct.concept.conceptName":null,"study.naturalProduct.concept.domainId":null,"study.naturalProduct.concept.vocabularyId":null,"study.naturalProduct.concept.conceptClassId":null,"study.naturalProduct.concept.standardConcept":null,"study.naturalProduct.concept.conceptCode":null,"study.naturalProduct.concept.validStartDate":null,"study.naturalProduct.concept.validEndDate":null,"study.naturalProduct.concept.invalid_reason":null,"study.compound.id":null,"study.compound.name":null,"study.compound.unii":null,"study.compound.inChIKey":null,"study.compound.publicDescription":null,"study.compound.internalComment":null,"study.compound.conceptId":null,"study.compound.enantiomerOfId":null,"study.studySourceType.id":1,"study.studySourceType.name":"Published report","testSystem.id":null,"testSystem.name":null,"testSystem.sortOrder":null,"testSystem.conceptId":null,"testSystem.categoryId":null,"testSystem.category.id":null,"testSystem.category.name":null,"testSystem.category.sortOrder":null,"testSystem.category.requiresCytochromeB5":null,"cytochromeB5.id":null,"cytochromeB5.name":null,"cytochromeB5.sortOrder":null,"cytochromeB5.conceptId":null,"controlDataExperiment.id":null,"controlDataExperiment.uid":null,"controlDataExperiment.name":null,"controlDataExperiment.overallEffect":null,"controlDataExperiment.isControlData":null,"controlDataExperiment.isIc50Shift":null,"controlDataExperiment.croCutoff":null,"controlDataExperiment.croIdentifier":null,"controlDataExperiment.comment":null,"controlDataExperiment.experimentalConditionsComment":null,"controlDataExperiment.resultsComment":null,"controlDataExperiment.internalComment":null,"controlDataExperiment.objectCompoundId":null,"controlDataExperiment.objectMetaboliteCompoundId":null,"controlDataExperiment.precipitantCompoundId":null,"controlDataExperiment.cytochromeB5Id":null,"controlDataExperiment.studyId":null,"controlDataExperiment.experimentTypeId":null,"controlDataExperiment.testSystemId":null,"controlDataExperiment.ic50ShiftExperimentId":null,"controlDataExperiment.controlDataExperimentId":null,"controlDataExperiment.controlDataForExperimentId":null,"controlDataExperiment.naturalProductSampleId":null,"controlDataExperiment.experimentType.id":null,"controlDataExperiment.experimentType.name":null,"controlDataExperiment.experimentType.isInVitro":null,"controlDataExperiment.experimentType.isTransporter":null,"controlDataExperiment.experimentType.isEnzyme":null,"controlDataExperiment.experimentType.purl":null,"controlDataExperiment.objectCompound.id":null,"controlDataExperiment.objectCompound.name":null,"controlDataExperiment.objectCompound.unii":null,"controlDataExperiment.objectCompound.inChIKey":null,"controlDataExperiment.objectCompound.publicDescription":null,"controlDataExperiment.objectCompound.internalComment":null,"controlDataExperiment.objectCompound.conceptId":null,"controlDataExperiment.objectCompound.enantiomerOfId":null,"controlDataExperiment.precipitantCompound.id":null,"controlDataExperiment.precipitantCompound.name":null,"controlDataExperiment.precipitantCompound.unii":null,"controlDataExperiment.precipitantCompound.inChIKey":null,"controlDataExperiment.precipitantCompound.publicDescription":null,"controlDataExperiment.precipitantCompound.internalComment":null,"controlDataExperiment.precipitantCompound.conceptId":null,"controlDataExperiment.precipitantCompound.enantiomerOfId":null,"controlDataExperiment.objectMetaboliteCompound.id":null,"controlDataExperiment.objectMetaboliteCompound.name":null,"controlDataExperiment.objectMetaboliteCompound.unii":null,"controlDataExperiment.objectMetaboliteCompound.inChIKey":null,"controlDataExperiment.objectMetaboliteCompound.publicDescriptio":null,"controlDataExperiment.objectMetaboliteCompound.internalComment":null,"controlDataExperiment.objectMetaboliteCompound.conceptId":null,"controlDataExperiment.objectMetaboliteCompound.enantiomerOfId":null,"controlDataExperiment.enzymes.id":null,"controlDataExperiment.enzymes.name":null,"controlDataExperiment.enzymes.conceptId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.enzymeId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.experiment":null,"controlDataExperiment.transporters.id":null,"controlDataExperiment.transporters.name":null,"controlDataExperiment.transporters.conceptId":null,"controlDataExperiment.transporters.experiment_transporter_xref.":null,"controlDataExperiment.quantifiedMetabolites.id":null,"controlDataExperiment.quantifiedMetabolites.name":null,"controlDataExperiment.quantifiedMetabolites.unii":null,"controlDataExperiment.quantifiedMetabolites.inChIKey":null,"controlDataExperiment.quantifiedMetabolites.publicDescription":null,"controlDataExperiment.quantifiedMetabolites.internalComment":null,"controlDataExperiment.quantifiedMetabolites.conceptId":null,"controlDataExperiment.quantifiedMetabolites.enantiomerOfId":null,"controlDataExperiment.quantifiedMetabolites.experiment_quantifi":null,"experimentAnswers.id":7054,"experimentAnswers.text":null,"experimentAnswers.answerId":706,"experimentAnswers.experimentId":297,"experimentAnswers.questionId":128,"experimentAnswers.question.id":128,"experimentAnswers.question.text":"Adverse event classes","experimentAnswers.question.required":false,"experimentAnswers.question.maxAnswers":100,"experimentAnswers.question.type":null,"experimentAnswers.question.conceptId":null,"experimentAnswers.question.answers.id":714,"experimentAnswers.question.answers.text":"Musculoskeletal and connective tissue disorders","experimentAnswers.question.answers.sortOrder":null,"experimentAnswers.question.answers.conceptId":36500000,"experimentAnswers.question.answers.questionId":128,"experimentAnswers.answer.id":706,"experimentAnswers.answer.text":"Gastrointestinal disorders","experimentAnswers.answer.sortOrder":null,"experimentAnswers.answer.conceptId":35700000,"experimentAnswers.answer.questionId":128},{"id":297,"uid":"NPDI-Bi2fGw","name":"CYP3A4 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Interaction","experimentType.isInVitro":false,"experimentType.isTransporter":false,"experimentType.isEnzyme":false,"experimentType.purl":"http://purl.obolibrary.org/obo/DIDEO_00000071","objectCompound.id":26,"objectCompound.name":"midazolam","objectCompound.unii":"R60L0SM5BC","objectCompound.inChIKey":"DDLIGBOFAVUZHB-UHFFFAOYSA-N","objectCompound.publicDescription":null,"objectCompound.internalComment":null,"objectCompound.conceptId":708298,"objectCompound.enantiomerOfId":null,"objectCompound.concept.conceptId":708298,"objectCompound.concept.conceptName":"Midazolam","objectCompound.concept.domainId":"Drug","objectCompound.concept.vocabularyId":"RxNorm","objectCompound.concept.conceptClassId":"Ingredient","objectCompound.concept.standardConcept":"S","objectCompound.concept.conceptCode":"6960","objectCompound.concept.validStartDate":"1970-01-01T00:00:00.000Z","objectCompound.concept.validEndDate":"2099-12-31T00:00:00.000Z","objectCompound.concept.invalid_reason":null,"precipitantCompound.id":127,"precipitantCompound.name":"goldenseal root extract","precipitantCompound.unii":null,"precipitantCompound.inChIKey":null,"precipitantCompound.publicDescription":null,"precipitantCompound.internalComment":null,"precipitantCompound.conceptId":null,"precipitantCompound.enantiomerOfId":null,"precipitantCompound.concept.conceptId":null,"precipitantCompound.concept.conceptName":null,"precipitantCompound.concept.domainId":null,"precipitantCompound.concept.vocabularyId":null,"precipitantCompound.concept.conceptClassId":null,"precipitantCompound.concept.standardConcept":null,"precipitantCompound.concept.conceptCode":null,"precipitantCompound.concept.validStartDate":null,"precipitantCompound.concept.validEndDate":null,"precipitantCompound.concept.invalid_reason":null,"objectMetaboliteCompound.id":null,"objectMetaboliteCompound.name":null,"objectMetaboliteCompound.unii":null,"objectMetaboliteCompound.inChIKey":null,"objectMetaboliteCompound.publicDescription":null,"objectMetaboliteCompound.internalComment":null,"objectMetaboliteCompound.conceptId":null,"objectMetaboliteCompound.enantiomerOfId":null,"objectMetaboliteCompound.concept.conceptId":null,"objectMetaboliteCompound.concept.conceptName":null,"objectMetaboliteCompound.concept.domainId":null,"objectMetaboliteCompound.concept.vocabularyId":null,"objectMetaboliteCompound.concept.conceptClassId":null,"objectMetaboliteCompound.concept.standardConcept":null,"objectMetaboliteCompound.concept.conceptCode":null,"objectMetaboliteCompound.concept.validStartDate":null,"objectMetaboliteCompound.concept.validEndDate":null,"objectMetaboliteCompound.concept.invalid_reason":null,"enzymes.id":13,"enzymes.name":"CYP3A4","enzymes.conceptId":4306811,"enzymes.experiment_enzyme_xref.enzymeId":13,"enzymes.experiment_enzyme_xref.experimentId":297,"transporters.id":null,"transporters.name":null,"transporters.conceptId":null,"transporters.experiment_transporter_xref.experimentId":null,"transporters.experiment_transporter_xref.transporterId":null,"quantifiedMetabolites.id":null,"quantifiedMetabolites.name":null,"quantifiedMetabolites.unii":null,"quantifiedMetabolites.inChIKey":null,"quantifiedMetabolites.publicDescription":null,"quantifiedMetabolites.internalComment":null,"quantifiedMetabolites.conceptId":null,"quantifiedMetabolites.enantiomerOfId":null,"quantifiedMetabolites.experiment_quantified_metabolite_xref.com":null,"quantifiedMetabolites.experiment_quantified_metabolite_xref.exp":null,"study.id":73,"study.uid":"NPDI-ftEv0g","study.name":"In vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis 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event classes","experimentAnswers.question.required":false,"experimentAnswers.question.maxAnswers":100,"experimentAnswers.question.type":null,"experimentAnswers.question.conceptId":null,"experimentAnswers.question.answers.id":715,"experimentAnswers.question.answers.text":"Neoplasms benign, malignant and unspecified (incl cysts and polyps)","experimentAnswers.question.answers.sortOrder":null,"experimentAnswers.question.answers.conceptId":36600000,"experimentAnswers.question.answers.questionId":128,"experimentAnswers.answer.id":706,"experimentAnswers.answer.text":"Gastrointestinal disorders","experimentAnswers.answer.sortOrder":null,"experimentAnswers.answer.conceptId":35700000,"experimentAnswers.answer.questionId":128},{"id":297,"uid":"NPDI-Bi2fGw","name":"CYP3A4 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis canadensis","study.naturalProduct.name":"Goldenseal","study.naturalProduct.itis":null,"study.naturalProduct.srs":"66690655-f406-4d67-96e3-2066aafee8d5","study.naturalProduct.source_id":"","study.naturalProduct.conceptId":null,"study.naturalProduct.concept.conceptId":null,"study.naturalProduct.concept.conceptName":null,"study.naturalProduct.concept.domainId":null,"study.naturalProduct.concept.vocabularyId":null,"study.naturalProduct.concept.conceptClassId":null,"study.naturalProduct.concept.standardConcept":null,"study.naturalProduct.concept.conceptCode":null,"study.naturalProduct.concept.validStartDate":null,"study.naturalProduct.concept.validEndDate":null,"study.naturalProduct.concept.invalid_reason":null,"study.compound.id":null,"study.compound.name":null,"study.compound.unii":null,"study.compound.inChIKey":null,"study.compound.publicDescription":null,"study.compound.internalComment":null,"study.compound.conceptId":null,"study.compound.enantiomerOfId":null,"study.studySourceType.id":1,"study.studySourceType.name":"Published report","testSystem.id":null,"testSystem.name":null,"testSystem.sortOrder":null,"testSystem.conceptId":null,"testSystem.categoryId":null,"testSystem.category.id":null,"testSystem.category.name":null,"testSystem.category.sortOrder":null,"testSystem.category.requiresCytochromeB5":null,"cytochromeB5.id":null,"cytochromeB5.name":null,"cytochromeB5.sortOrder":null,"cytochromeB5.conceptId":null,"controlDataExperiment.id":null,"controlDataExperiment.uid":null,"controlDataExperiment.name":null,"controlDataExperiment.overallEffect":null,"controlDataExperiment.isControlData":null,"controlDataExperiment.isIc50Shift":null,"controlDataExperiment.croCutoff":null,"controlDataExperiment.croIdentifier":null,"controlDataExperiment.comment":null,"controlDataExperiment.experimentalConditionsComment":null,"controlDataExperiment.resultsComment":null,"controlDataExperiment.internalComment":null,"controlDataExperiment.objectCompoundId":null,"controlDataExperiment.objectMetaboliteCompoundId":null,"controlDataExperiment.precipitantCompoundId":null,"controlDataExperiment.cytochromeB5Id":null,"controlDataExperiment.studyId":null,"controlDataExperiment.experimentTypeId":null,"controlDataExperiment.testSystemId":null,"controlDataExperiment.ic50ShiftExperimentId":null,"controlDataExperiment.controlDataExperimentId":null,"controlDataExperiment.controlDataForExperimentId":null,"controlDataExperiment.naturalProductSampleId":null,"controlDataExperiment.experimentType.id":null,"controlDataExperiment.experimentType.name":null,"controlDataExperiment.experimentType.isInVitro":null,"controlDataExperiment.experimentType.isTransporter":null,"controlDataExperiment.experimentType.isEnzyme":null,"controlDataExperiment.experimentType.purl":null,"controlDataExperiment.objectCompound.id":null,"controlDataExperiment.objectCompound.name":null,"controlDataExperiment.objectCompound.unii":null,"controlDataExperiment.objectCompound.inChIKey":null,"controlDataExperiment.objectCompound.publicDescription":null,"controlDataExperiment.objectCompound.internalComment":null,"controlDataExperiment.objectCompound.conceptId":null,"controlDataExperiment.objectCompound.enantiomerOfId":null,"controlDataExperiment.precipitantCompound.id":null,"controlDataExperiment.precipitantCompound.name":null,"controlDataExperiment.precipitantCompound.unii":null,"controlDataExperiment.precipitantCompound.inChIKey":null,"controlDataExperiment.precipitantCompound.publicDescription":null,"controlDataExperiment.precipitantCompound.internalComment":null,"controlDataExperiment.precipitantCompound.conceptId":null,"controlDataExperiment.precipitantCompound.enantiomerOfId":null,"controlDataExperiment.objectMetaboliteCompound.id":null,"controlDataExperiment.objectMetaboliteCompound.name":null,"controlDataExperiment.objectMetaboliteCompound.unii":null,"controlDataExperiment.objectMetaboliteCompound.inChIKey":null,"controlDataExperiment.objectMetaboliteCompound.publicDescriptio":null,"controlDataExperiment.objectMetaboliteCompound.internalComment":null,"controlDataExperiment.objectMetaboliteCompound.conceptId":null,"controlDataExperiment.objectMetaboliteCompound.enantiomerOfId":null,"controlDataExperiment.enzymes.id":null,"controlDataExperiment.enzymes.name":null,"controlDataExperiment.enzymes.conceptId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.enzymeId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.experiment":null,"controlDataExperiment.transporters.id":null,"controlDataExperiment.transporters.name":null,"controlDataExperiment.transporters.conceptId":null,"controlDataExperiment.transporters.experiment_transporter_xref.":null,"controlDataExperiment.quantifiedMetabolites.id":null,"controlDataExperiment.quantifiedMetabolites.name":null,"controlDataExperiment.quantifiedMetabolites.unii":null,"controlDataExperiment.quantifiedMetabolites.inChIKey":null,"controlDataExperiment.quantifiedMetabolites.publicDescription":null,"controlDataExperiment.quantifiedMetabolites.internalComment":null,"controlDataExperiment.quantifiedMetabolites.conceptId":null,"controlDataExperiment.quantifiedMetabolites.enantiomerOfId":null,"controlDataExperiment.quantifiedMetabolites.experiment_quantifi":null,"experimentAnswers.id":7054,"experimentAnswers.text":null,"experimentAnswers.answerId":706,"experimentAnswers.experimentId":297,"experimentAnswers.questionId":128,"experimentAnswers.question.id":128,"experimentAnswers.question.text":"Adverse event classes","experimentAnswers.question.required":false,"experimentAnswers.question.maxAnswers":100,"experimentAnswers.question.type":null,"experimentAnswers.question.conceptId":null,"experimentAnswers.question.answers.id":716,"experimentAnswers.question.answers.text":"Nervous system disorders","experimentAnswers.question.answers.sortOrder":null,"experimentAnswers.question.answers.conceptId":36700000,"experimentAnswers.question.answers.questionId":128,"experimentAnswers.answer.id":706,"experimentAnswers.answer.text":"Gastrointestinal disorders","experimentAnswers.answer.sortOrder":null,"experimentAnswers.answer.conceptId":35700000,"experimentAnswers.answer.questionId":128},{"id":297,"uid":"NPDI-Bi2fGw","name":"CYP3A4 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Interaction","experimentType.isInVitro":false,"experimentType.isTransporter":false,"experimentType.isEnzyme":false,"experimentType.purl":"http://purl.obolibrary.org/obo/DIDEO_00000071","objectCompound.id":26,"objectCompound.name":"midazolam","objectCompound.unii":"R60L0SM5BC","objectCompound.inChIKey":"DDLIGBOFAVUZHB-UHFFFAOYSA-N","objectCompound.publicDescription":null,"objectCompound.internalComment":null,"objectCompound.conceptId":708298,"objectCompound.enantiomerOfId":null,"objectCompound.concept.conceptId":708298,"objectCompound.concept.conceptName":"Midazolam","objectCompound.concept.domainId":"Drug","objectCompound.concept.vocabularyId":"RxNorm","objectCompound.concept.conceptClassId":"Ingredient","objectCompound.concept.standardConcept":"S","objectCompound.concept.conceptCode":"6960","objectCompound.concept.validStartDate":"1970-01-01T00:00:00.000Z","objectCompound.concept.validEndDate":"2099-12-31T00:00:00.000Z","objectCompound.concept.invalid_reason":null,"precipitantCompound.id":127,"precipitantCompound.name":"goldenseal 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extract","precipitantCompound.unii":null,"precipitantCompound.inChIKey":null,"precipitantCompound.publicDescription":null,"precipitantCompound.internalComment":null,"precipitantCompound.conceptId":null,"precipitantCompound.enantiomerOfId":null,"precipitantCompound.concept.conceptId":null,"precipitantCompound.concept.conceptName":null,"precipitantCompound.concept.domainId":null,"precipitantCompound.concept.vocabularyId":null,"precipitantCompound.concept.conceptClassId":null,"precipitantCompound.concept.standardConcept":null,"precipitantCompound.concept.conceptCode":null,"precipitantCompound.concept.validStartDate":null,"precipitantCompound.concept.validEndDate":null,"precipitantCompound.concept.invalid_reason":null,"objectMetaboliteCompound.id":null,"objectMetaboliteCompound.name":null,"objectMetaboliteCompound.unii":null,"objectMetaboliteCompound.inChIKey":null,"objectMetaboliteCompound.publicDescription":null,"objectMetaboliteCompound.internalComment":null,"objectMetaboliteCompound.conceptId":null,"objectMetaboliteCompound.enantiomerOfId":null,"objectMetaboliteCompound.concept.conceptId":null,"objectMetaboliteCompound.concept.conceptName":null,"objectMetaboliteCompound.concept.domainId":null,"objectMetaboliteCompound.concept.vocabularyId":null,"objectMetaboliteCompound.concept.conceptClassId":null,"objectMetaboliteCompound.concept.standardConcept":null,"objectMetaboliteCompound.concept.conceptCode":null,"objectMetaboliteCompound.concept.validStartDate":null,"objectMetaboliteCompound.concept.validEndDate":null,"objectMetaboliteCompound.concept.invalid_reason":null,"enzymes.id":13,"enzymes.name":"CYP3A4","enzymes.conceptId":4306811,"enzymes.experiment_enzyme_xref.enzymeId":13,"enzymes.experiment_enzyme_xref.experimentId":297,"transporters.id":null,"transporters.name":null,"transporters.conceptId":null,"transporters.experiment_transporter_xref.experimentId":null,"transporters.experiment_transporter_xref.transporterId":null,"quantifiedMetabolites.id":null,"quantifiedMetabolites.name":null,"quantifiedMetabolites.unii":null,"quantifiedMetabolites.inChIKey":null,"quantifiedMetabolites.publicDescription":null,"quantifiedMetabolites.internalComment":null,"quantifiedMetabolites.conceptId":null,"quantifiedMetabolites.enantiomerOfId":null,"quantifiedMetabolites.experiment_quantified_metabolite_xref.com":null,"quantifiedMetabolites.experiment_quantified_metabolite_xref.exp":null,"study.id":73,"study.uid":"NPDI-ftEv0g","study.name":"In vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis canadensis","study.naturalProduct.name":"Goldenseal","study.naturalProduct.itis":null,"study.naturalProduct.srs":"66690655-f406-4d67-96e3-2066aafee8d5","study.naturalProduct.source_id":"","study.naturalProduct.conceptId":null,"study.naturalProduct.concept.conceptId":null,"study.naturalProduct.concept.conceptName":null,"study.naturalProduct.concept.domainId":null,"study.naturalProduct.concept.vocabularyId":null,"study.naturalProduct.concept.conceptClassId":null,"study.naturalProduct.concept.standardConcept":null,"study.naturalProduct.concept.conceptCode":null,"study.naturalProduct.concept.validStartDate":null,"study.naturalProduct.concept.validEndDate":null,"study.naturalProduct.concept.invalid_reason":null,"study.compound.id":null,"study.compound.name":null,"study.compound.unii":null,"study.compound.inChIKey":null,"study.compound.publicDescription":null,"study.compound.internalComment":null,"study.compound.conceptId":null,"study.compound.enantiomerOfId":null,"study.studySourceType.id":1,"study.studySourceType.name":"Published report","testSystem.id":null,"testSystem.name":null,"testSystem.sortOrder":null,"testSystem.conceptId":null,"testSystem.categoryId":null,"testSystem.category.id":null,"testSystem.category.name":null,"testSystem.category.sortOrder":null,"testSystem.category.requiresCytochromeB5":null,"cytochromeB5.id":null,"cytochromeB5.name":null,"cytochromeB5.sortOrder":null,"cytochromeB5.conceptId":null,"controlDataExperiment.id":null,"controlDataExperiment.uid":null,"controlDataExperiment.name":null,"controlDataExperiment.overallEffect":null,"controlDataExperiment.isControlData":null,"controlDataExperiment.isIc50Shift":null,"controlDataExperiment.croCutoff":null,"controlDataExperiment.croIdentifier":null,"controlDataExperiment.comment":null,"controlDataExperiment.experimentalConditionsComment":null,"controlDataExperiment.resultsComment":null,"controlDataExperiment.internalComment":null,"controlDataExperiment.objectCompoundId":null,"controlDataExperiment.objectMetaboliteCompoundId":null,"controlDataExperiment.precipitantCompoundId":null,"controlDataExperiment.cytochromeB5Id":null,"controlDataExperiment.studyId":null,"controlDataExperiment.experimentTypeId":null,"controlDataExperiment.testSystemId":null,"controlDataExperiment.ic50ShiftExperimentId":null,"controlDataExperiment.controlDataExperimentId":null,"controlDataExperiment.controlDataForExperimentId":null,"controlDataExperiment.naturalProductSampleId":null,"controlDataExperiment.experimentType.id":null,"controlDataExperiment.experimentType.name":null,"controlDataExperiment.experimentType.isInVitro":null,"controlDataExperiment.experimentType.isTransporter":null,"controlDataExperiment.experimentType.isEnzyme":null,"controlDataExperiment.experimentType.purl":null,"controlDataExperiment.objectCompound.id":null,"controlDataExperiment.objectCompound.name":null,"controlDataExperiment.objectCompound.unii":null,"controlDataExperiment.objectCompound.inChIKey":null,"controlDataExperiment.objectCompound.publicDescription":null,"controlDataExperiment.objectCompound.internalComment":null,"controlDataExperiment.objectCompound.conceptId":null,"controlDataExperiment.objectCompound.enantiomerOfId":null,"controlDataExperiment.precipitantCompound.id":null,"controlDataExperiment.precipitantCompound.name":null,"controlDataExperiment.precipitantCompound.unii":null,"controlDataExperiment.precipitantCompound.inChIKey":null,"controlDataExperiment.precipitantCompound.publicDescription":null,"controlDataExperiment.precipitantCompound.internalComment":null,"controlDataExperiment.precipitantCompound.conceptId":null,"controlDataExperiment.precipitantCompound.enantiomerOfId":null,"controlDataExperiment.objectMetaboliteCompound.id":null,"controlDataExperiment.objectMetaboliteCompound.name":null,"controlDataExperiment.objectMetaboliteCompound.unii":null,"controlDataExperiment.objectMetaboliteCompound.inChIKey":null,"controlDataExperiment.objectMetaboliteCompound.publicDescriptio":null,"controlDataExperiment.objectMetaboliteCompound.internalComment":null,"controlDataExperiment.objectMetaboliteCompound.conceptId":null,"controlDataExperiment.objectMetaboliteCompound.enantiomerOfId":null,"controlDataExperiment.enzymes.id":null,"controlDataExperiment.enzymes.name":null,"controlDataExperiment.enzymes.conceptId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.enzymeId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.experiment":null,"controlDataExperiment.transporters.id":null,"controlDataExperiment.transporters.name":null,"controlDataExperiment.transporters.conceptId":null,"controlDataExperiment.transporters.experiment_transporter_xref.":null,"controlDataExperiment.quantifiedMetabolites.id":null,"controlDataExperiment.quantifiedMetabolites.name":null,"controlDataExperiment.quantifiedMetabolites.unii":null,"controlDataExperiment.quantifiedMetabolites.inChIKey":null,"controlDataExperiment.quantifiedMetabolites.publicDescription":null,"controlDataExperiment.quantifiedMetabolites.internalComment":null,"controlDataExperiment.quantifiedMetabolites.conceptId":null,"controlDataExperiment.quantifiedMetabolites.enantiomerOfId":null,"controlDataExperiment.quantifiedMetabolites.experiment_quantifi":null,"experimentAnswers.id":7054,"experimentAnswers.text":null,"experimentAnswers.answerId":706,"experimentAnswers.experimentId":297,"experimentAnswers.questionId":128,"experimentAnswers.question.id":128,"experimentAnswers.question.text":"Adverse event classes","experimentAnswers.question.required":false,"experimentAnswers.question.maxAnswers":100,"experimentAnswers.question.type":null,"experimentAnswers.question.conceptId":null,"experimentAnswers.question.answers.id":718,"experimentAnswers.question.answers.text":"Psychiatric disorders","experimentAnswers.question.answers.sortOrder":null,"experimentAnswers.question.answers.conceptId":36900000,"experimentAnswers.question.answers.questionId":128,"experimentAnswers.answer.id":706,"experimentAnswers.answer.text":"Gastrointestinal disorders","experimentAnswers.answer.sortOrder":null,"experimentAnswers.answer.conceptId":35700000,"experimentAnswers.answer.questionId":128},{"id":297,"uid":"NPDI-Bi2fGw","name":"CYP3A4 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Interaction","experimentType.isInVitro":false,"experimentType.isTransporter":false,"experimentType.isEnzyme":false,"experimentType.purl":"http://purl.obolibrary.org/obo/DIDEO_00000071","objectCompound.id":26,"objectCompound.name":"midazolam","objectCompound.unii":"R60L0SM5BC","objectCompound.inChIKey":"DDLIGBOFAVUZHB-UHFFFAOYSA-N","objectCompound.publicDescription":null,"objectCompound.internalComment":null,"objectCompound.conceptId":708298,"objectCompound.enantiomerOfId":null,"objectCompound.concept.conceptId":708298,"objectCompound.concept.conceptName":"Midazolam","objectCompound.concept.domainId":"Drug","objectCompound.concept.vocabularyId":"RxNorm","objectCompound.concept.conceptClassId":"Ingredient","objectCompound.concept.standardConcept":"S","objectCompound.concept.conceptCode":"6960","objectCompound.concept.validStartDate":"1970-01-01T00:00:00.000Z","objectCompound.concept.validEndDate":"2099-12-31T00:00:00.000Z","objectCompound.concept.invalid_reason":null,"precipitantCompound.id":127,"precipitantCompound.name":"goldenseal 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis 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Interaction","experimentType.isInVitro":false,"experimentType.isTransporter":false,"experimentType.isEnzyme":false,"experimentType.purl":"http://purl.obolibrary.org/obo/DIDEO_00000071","objectCompound.id":26,"objectCompound.name":"midazolam","objectCompound.unii":"R60L0SM5BC","objectCompound.inChIKey":"DDLIGBOFAVUZHB-UHFFFAOYSA-N","objectCompound.publicDescription":null,"objectCompound.internalComment":null,"objectCompound.conceptId":708298,"objectCompound.enantiomerOfId":null,"objectCompound.concept.conceptId":708298,"objectCompound.concept.conceptName":"Midazolam","objectCompound.concept.domainId":"Drug","objectCompound.concept.vocabularyId":"RxNorm","objectCompound.concept.conceptClassId":"Ingredient","objectCompound.concept.standardConcept":"S","objectCompound.concept.conceptCode":"6960","objectCompound.concept.validStartDate":"1970-01-01T00:00:00.000Z","objectCompound.concept.validEndDate":"2099-12-31T00:00:00.000Z","objectCompound.concept.invalid_reason":null,"precipitantCompound.id":127,"precipitantCompound.name":"goldenseal 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis 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event classes","experimentAnswers.question.required":false,"experimentAnswers.question.maxAnswers":100,"experimentAnswers.question.type":null,"experimentAnswers.question.conceptId":null,"experimentAnswers.question.answers.id":721,"experimentAnswers.question.answers.text":"Respiratory, thoracic and mediastinal disorders","experimentAnswers.question.answers.sortOrder":null,"experimentAnswers.question.answers.conceptId":37200000,"experimentAnswers.question.answers.questionId":128,"experimentAnswers.answer.id":706,"experimentAnswers.answer.text":"Gastrointestinal disorders","experimentAnswers.answer.sortOrder":null,"experimentAnswers.answer.conceptId":35700000,"experimentAnswers.answer.questionId":128},{"id":297,"uid":"NPDI-Bi2fGw","name":"CYP3A4 Experiment","overallEffect":1,"isControlData":false,"isIc50Shift":false,"croCutoff":null,"croIdentifier":null,"comment":null,"experimentalConditionsComment":null,"resultsComment":null,"internalComment":null,"objectCompoundId":26,"objectMetaboliteCompoundId":null,"precipitantCompoundId":127,"cytochromeB5Id":null,"studyId":73,"experimentTypeId":9,"testSystemId":null,"ic50ShiftExperimentId":null,"controlDataExperimentId":null,"controlDataForExperimentId":null,"naturalProductSampleId":null,"experimentType.id":9,"experimentType.name":"In Vivo Interaction","experimentType.isInVitro":false,"experimentType.isTransporter":false,"experimentType.isEnzyme":false,"experimentType.purl":"http://purl.obolibrary.org/obo/DIDEO_00000071","objectCompound.id":26,"objectCompound.name":"midazolam","objectCompound.unii":"R60L0SM5BC","objectCompound.inChIKey":"DDLIGBOFAVUZHB-UHFFFAOYSA-N","objectCompound.publicDescription":null,"objectCompound.internalComment":null,"objectCompound.conceptId":708298,"objectCompound.enantiomerOfId":null,"objectCompound.concept.conceptId":708298,"objectCompound.concept.conceptName":"Midazolam","objectCompound.concept.domainId":"Drug","objectCompound.concept.vocabularyId":"RxNorm","objectCompound.concept.conceptClassId":"Ingredient","objectCompound.concept.standardConcept":"S","objectCompound.concept.conceptCode":"6960","objectCompound.concept.validStartDate":"1970-01-01T00:00:00.000Z","objectCompound.concept.validEndDate":"2099-12-31T00:00:00.000Z","objectCompound.concept.invalid_reason":null,"precipitantCompound.id":127,"precipitantCompound.name":"goldenseal root 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis canadensis","study.naturalProduct.name":"Goldenseal","study.naturalProduct.itis":null,"study.naturalProduct.srs":"66690655-f406-4d67-96e3-2066aafee8d5","study.naturalProduct.source_id":"","study.naturalProduct.conceptId":null,"study.naturalProduct.concept.conceptId":null,"study.naturalProduct.concept.conceptName":null,"study.naturalProduct.concept.domainId":null,"study.naturalProduct.concept.vocabularyId":null,"study.naturalProduct.concept.conceptClassId":null,"study.naturalProduct.concept.standardConcept":null,"study.naturalProduct.concept.conceptCode":null,"study.naturalProduct.concept.validStartDate":null,"study.naturalProduct.concept.validEndDate":null,"study.naturalProduct.concept.invalid_reason":null,"study.compound.id":null,"study.compound.name":null,"study.compound.unii":null,"study.compound.inChIKey":null,"study.compound.publicDescription":null,"study.compound.internalComment":null,"study.compound.conceptId":null,"study.compound.enantiomerOfId":null,"study.studySourceType.id":1,"study.studySourceType.name":"Published report","testSystem.id":null,"testSystem.name":null,"testSystem.sortOrder":null,"testSystem.conceptId":null,"testSystem.categoryId":null,"testSystem.category.id":null,"testSystem.category.name":null,"testSystem.category.sortOrder":null,"testSystem.category.requiresCytochromeB5":null,"cytochromeB5.id":null,"cytochromeB5.name":null,"cytochromeB5.sortOrder":null,"cytochromeB5.conceptId":null,"controlDataExperiment.id":null,"controlDataExperiment.uid":null,"controlDataExperiment.name":null,"controlDataExperiment.overallEffect":null,"controlDataExperiment.isControlData":null,"controlDataExperiment.isIc50Shift":null,"controlDataExperiment.croCutoff":null,"controlDataExperiment.croIdentifier":null,"controlDataExperiment.comment":null,"controlDataExperiment.experimentalConditionsComment":null,"controlDataExperiment.resultsComment":null,"controlDataExperiment.internalComment":null,"controlDataExperiment.objectCompoundId":null,"controlDataExperiment.objectMetaboliteCompoundId":null,"controlDataExperiment.precipitantCompoundId":null,"controlDataExperiment.cytochromeB5Id":null,"controlDataExperiment.studyId":null,"controlDataExperiment.experimentTypeId":null,"controlDataExperiment.testSystemId":null,"controlDataExperiment.ic50ShiftExperimentId":null,"controlDataExperiment.controlDataExperimentId":null,"controlDataExperiment.controlDataForExperimentId":null,"controlDataExperiment.naturalProductSampleId":null,"controlDataExperiment.experimentType.id":null,"controlDataExperiment.experimentType.name":null,"controlDataExperiment.experimentType.isInVitro":null,"controlDataExperiment.experimentType.isTransporter":null,"controlDataExperiment.experimentType.isEnzyme":null,"controlDataExperiment.experimentType.purl":null,"controlDataExperiment.objectCompound.id":null,"controlDataExperiment.objectCompound.name":null,"controlDataExperiment.objectCompound.unii":null,"controlDataExperiment.objectCompound.inChIKey":null,"controlDataExperiment.objectCompound.publicDescription":null,"controlDataExperiment.objectCompound.internalComment":null,"controlDataExperiment.objectCompound.conceptId":null,"controlDataExperiment.objectCompound.enantiomerOfId":null,"controlDataExperiment.precipitantCompound.id":null,"controlDataExperiment.precipitantCompound.name":null,"controlDataExperiment.precipitantCompound.unii":null,"controlDataExperiment.precipitantCompound.inChIKey":null,"controlDataExperiment.precipitantCompound.publicDescription":null,"controlDataExperiment.precipitantCompound.internalComment":null,"controlDataExperiment.precipitantCompound.conceptId":null,"controlDataExperiment.precipitantCompound.enantiomerOfId":null,"controlDataExperiment.objectMetaboliteCompound.id":null,"controlDataExperiment.objectMetaboliteCompound.name":null,"controlDataExperiment.objectMetaboliteCompound.unii":null,"controlDataExperiment.objectMetaboliteCompound.inChIKey":null,"controlDataExperiment.objectMetaboliteCompound.publicDescriptio":null,"controlDataExperiment.objectMetaboliteCompound.internalComment":null,"controlDataExperiment.objectMetaboliteCompound.conceptId":null,"controlDataExperiment.objectMetaboliteCompound.enantiomerOfId":null,"controlDataExperiment.enzymes.id":null,"controlDataExperiment.enzymes.name":null,"controlDataExperiment.enzymes.conceptId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.enzymeId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.experiment":null,"controlDataExperiment.transporters.id":null,"controlDataExperiment.transporters.name":null,"controlDataExperiment.transporters.conceptId":null,"controlDataExperiment.transporters.experiment_transporter_xref.":null,"controlDataExperiment.quantifiedMetabolites.id":null,"controlDataExperiment.quantifiedMetabolites.name":null,"controlDataExperiment.quantifiedMetabolites.unii":null,"controlDataExperiment.quantifiedMetabolites.inChIKey":null,"controlDataExperiment.quantifiedMetabolites.publicDescription":null,"controlDataExperiment.quantifiedMetabolites.internalComment":null,"controlDataExperiment.quantifiedMetabolites.conceptId":null,"controlDataExperiment.quantifiedMetabolites.enantiomerOfId":null,"controlDataExperiment.quantifiedMetabolites.experiment_quantifi":null,"experimentAnswers.id":7054,"experimentAnswers.text":null,"experimentAnswers.answerId":706,"experimentAnswers.experimentId":297,"experimentAnswers.questionId":128,"experimentAnswers.question.id":128,"experimentAnswers.question.text":"Adverse event classes","experimentAnswers.question.required":false,"experimentAnswers.question.maxAnswers":100,"experimentAnswers.question.type":null,"experimentAnswers.question.conceptId":null,"experimentAnswers.question.answers.id":722,"experimentAnswers.question.answers.text":"Skin and subcutaneous tissue disorders","experimentAnswers.question.answers.sortOrder":null,"experimentAnswers.question.answers.conceptId":37300000,"experimentAnswers.question.answers.questionId":128,"experimentAnswers.answer.id":706,"experimentAnswers.answer.text":"Gastrointestinal disorders","experimentAnswers.answer.sortOrder":null,"experimentAnswers.answer.conceptId":35700000,"experimentAnswers.answer.questionId":128},{"id":297,"uid":"NPDI-Bi2fGw","name":"CYP3A4 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Interaction","experimentType.isInVitro":false,"experimentType.isTransporter":false,"experimentType.isEnzyme":false,"experimentType.purl":"http://purl.obolibrary.org/obo/DIDEO_00000071","objectCompound.id":26,"objectCompound.name":"midazolam","objectCompound.unii":"R60L0SM5BC","objectCompound.inChIKey":"DDLIGBOFAVUZHB-UHFFFAOYSA-N","objectCompound.publicDescription":null,"objectCompound.internalComment":null,"objectCompound.conceptId":708298,"objectCompound.enantiomerOfId":null,"objectCompound.concept.conceptId":708298,"objectCompound.concept.conceptName":"Midazolam","objectCompound.concept.domainId":"Drug","objectCompound.concept.vocabularyId":"RxNorm","objectCompound.concept.conceptClassId":"Ingredient","objectCompound.concept.standardConcept":"S","objectCompound.concept.conceptCode":"6960","objectCompound.concept.validStartDate":"1970-01-01T00:00:00.000Z","objectCompound.concept.validEndDate":"2099-12-31T00:00:00.000Z","objectCompound.concept.invalid_reason":null,"precipitantCompound.id":127,"precipitantCompound.name":"goldenseal 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis canadensis","study.naturalProduct.name":"Goldenseal","study.naturalProduct.itis":null,"study.naturalProduct.srs":"66690655-f406-4d67-96e3-2066aafee8d5","study.naturalProduct.source_id":"","study.naturalProduct.conceptId":null,"study.naturalProduct.concept.conceptId":null,"study.naturalProduct.concept.conceptName":null,"study.naturalProduct.concept.domainId":null,"study.naturalProduct.concept.vocabularyId":null,"study.naturalProduct.concept.conceptClassId":null,"study.naturalProduct.concept.standardConcept":null,"study.naturalProduct.concept.conceptCode":null,"study.naturalProduct.concept.validStartDate":null,"study.naturalProduct.concept.validEndDate":null,"study.naturalProduct.concept.invalid_reason":null,"study.compound.id":null,"study.compound.name":null,"study.compound.unii":null,"study.compound.inChIKey":null,"study.compound.publicDescription":null,"study.compound.internalComment":null,"study.compound.conceptId":null,"study.compound.enantiomerOfId":null,"study.studySourceType.id":1,"study.studySourceType.name":"Published report","testSystem.id":null,"testSystem.name":null,"testSystem.sortOrder":null,"testSystem.conceptId":null,"testSystem.categoryId":null,"testSystem.category.id":null,"testSystem.category.name":null,"testSystem.category.sortOrder":null,"testSystem.category.requiresCytochromeB5":null,"cytochromeB5.id":null,"cytochromeB5.name":null,"cytochromeB5.sortOrder":null,"cytochromeB5.conceptId":null,"controlDataExperiment.id":null,"controlDataExperiment.uid":null,"controlDataExperiment.name":null,"controlDataExperiment.overallEffect":null,"controlDataExperiment.isControlData":null,"controlDataExperiment.isIc50Shift":null,"controlDataExperiment.croCutoff":null,"controlDataExperiment.croIdentifier":null,"controlDataExperiment.comment":null,"controlDataExperiment.experimentalConditionsComment":null,"controlDataExperiment.resultsComment":null,"controlDataExperiment.internalComment":null,"controlDataExperiment.objectCompoundId":null,"controlDataExperiment.objectMetaboliteCompoundId":null,"controlDataExperiment.precipitantCompoundId":null,"controlDataExperiment.cytochromeB5Id":null,"controlDataExperiment.studyId":null,"controlDataExperiment.experimentTypeId":null,"controlDataExperiment.testSystemId":null,"controlDataExperiment.ic50ShiftExperimentId":null,"controlDataExperiment.controlDataExperimentId":null,"controlDataExperiment.controlDataForExperimentId":null,"controlDataExperiment.naturalProductSampleId":null,"controlDataExperiment.experimentType.id":null,"controlDataExperiment.experimentType.name":null,"controlDataExperiment.experimentType.isInVitro":null,"controlDataExperiment.experimentType.isTransporter":null,"controlDataExperiment.experimentType.isEnzyme":null,"controlDataExperiment.experimentType.purl":null,"controlDataExperiment.objectCompound.id":null,"controlDataExperiment.objectCompound.name":null,"controlDataExperiment.objectCompound.unii":null,"controlDataExperiment.objectCompound.inChIKey":null,"controlDataExperiment.objectCompound.publicDescription":null,"controlDataExperiment.objectCompound.internalComment":null,"controlDataExperiment.objectCompound.conceptId":null,"controlDataExperiment.objectCompound.enantiomerOfId":null,"controlDataExperiment.precipitantCompound.id":null,"controlDataExperiment.precipitantCompound.name":null,"controlDataExperiment.precipitantCompound.unii":null,"controlDataExperiment.precipitantCompound.inChIKey":null,"controlDataExperiment.precipitantCompound.publicDescription":null,"controlDataExperiment.precipitantCompound.internalComment":null,"controlDataExperiment.precipitantCompound.conceptId":null,"controlDataExperiment.precipitantCompound.enantiomerOfId":null,"controlDataExperiment.objectMetaboliteCompound.id":null,"controlDataExperiment.objectMetaboliteCompound.name":null,"controlDataExperiment.objectMetaboliteCompound.unii":null,"controlDataExperiment.objectMetaboliteCompound.inChIKey":null,"controlDataExperiment.objectMetaboliteCompound.publicDescriptio":null,"controlDataExperiment.objectMetaboliteCompound.internalComment":null,"controlDataExperiment.objectMetaboliteCompound.conceptId":null,"controlDataExperiment.objectMetaboliteCompound.enantiomerOfId":null,"controlDataExperiment.enzymes.id":null,"controlDataExperiment.enzymes.name":null,"controlDataExperiment.enzymes.conceptId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.enzymeId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.experiment":null,"controlDataExperiment.transporters.id":null,"controlDataExperiment.transporters.name":null,"controlDataExperiment.transporters.conceptId":null,"controlDataExperiment.transporters.experiment_transporter_xref.":null,"controlDataExperiment.quantifiedMetabolites.id":null,"controlDataExperiment.quantifiedMetabolites.name":null,"controlDataExperiment.quantifiedMetabolites.unii":null,"controlDataExperiment.quantifiedMetabolites.inChIKey":null,"controlDataExperiment.quantifiedMetabolites.publicDescription":null,"controlDataExperiment.quantifiedMetabolites.internalComment":null,"controlDataExperiment.quantifiedMetabolites.conceptId":null,"controlDataExperiment.quantifiedMetabolites.enantiomerOfId":null,"controlDataExperiment.quantifiedMetabolites.experiment_quantifi":null,"experimentAnswers.id":7054,"experimentAnswers.text":null,"experimentAnswers.answerId":706,"experimentAnswers.experimentId":297,"experimentAnswers.questionId":128,"experimentAnswers.question.id":128,"experimentAnswers.question.text":"Adverse event classes","experimentAnswers.question.required":false,"experimentAnswers.question.maxAnswers":100,"experimentAnswers.question.type":null,"experimentAnswers.question.conceptId":null,"experimentAnswers.question.answers.id":723,"experimentAnswers.question.answers.text":"Social circumstances","experimentAnswers.question.answers.sortOrder":null,"experimentAnswers.question.answers.conceptId":37400000,"experimentAnswers.question.answers.questionId":128,"experimentAnswers.answer.id":706,"experimentAnswers.answer.text":"Gastrointestinal disorders","experimentAnswers.answer.sortOrder":null,"experimentAnswers.answer.conceptId":35700000,"experimentAnswers.answer.questionId":128},{"id":297,"uid":"NPDI-Bi2fGw","name":"CYP3A4 Experiment","overallEffect":1,"isControlData":false,"isIc50Shift":false,"croCutoff":null,"croIdentifier":null,"comment":null,"experimentalConditionsComment":null,"resultsComment":null,"internalComment":null,"objectCompoundId":26,"objectMetaboliteCompoundId":null,"precipitantCompoundId":127,"cytochromeB5Id":null,"studyId":73,"experimentTypeId":9,"testSystemId":null,"ic50ShiftExperimentId":null,"controlDataExperimentId":null,"controlDataForExperimentId":null,"naturalProductSampleId":null,"experimentType.id":9,"experimentType.name":"In Vivo Interaction","experimentType.isInVitro":false,"experimentType.isTransporter":false,"experimentType.isEnzyme":false,"experimentType.purl":"http://purl.obolibrary.org/obo/DIDEO_00000071","objectCompound.id":26,"objectCompound.name":"midazolam","objectCompound.unii":"R60L0SM5BC","objectCompound.inChIKey":"DDLIGBOFAVUZHB-UHFFFAOYSA-N","objectCompound.publicDescription":null,"objectCompound.internalComment":null,"objectCompound.conceptId":708298,"objectCompound.enantiomerOfId":null,"objectCompound.concept.conceptId":708298,"objectCompound.concept.conceptName":"Midazolam","objectCompound.concept.domainId":"Drug","objectCompound.concept.vocabularyId":"RxNorm","objectCompound.concept.conceptClassId":"Ingredient","objectCompound.concept.standardConcept":"S","objectCompound.concept.conceptCode":"6960","objectCompound.concept.validStartDate":"1970-01-01T00:00:00.000Z","objectCompound.concept.validEndDate":"2099-12-31T00:00:00.000Z","objectCompound.concept.invalid_reason":null,"precipitantCompound.id":127,"precipitantCompound.name":"goldenseal root extract","precipitantCompound.unii":null,"precipitantCompound.inChIKey":null,"precipitantCompound.publicDescription":null,"precipitantCompound.internalComment":null,"precipitantCompound.conceptId":null,"precipitantCompound.enantiomerOfId":null,"precipitantCompound.concept.conceptId":null,"precipitantCompound.concept.conceptName":null,"precipitantCompound.concept.domainId":null,"precipitantCompound.concept.vocabularyId":null,"precipitantCompound.concept.conceptClassId":null,"precipitantCompound.concept.standardConcept":null,"precipitantCompound.concept.conceptCode":null,"precipitantCompound.concept.validStartDate":null,"precipitantCompound.concept.validEndDate":null,"precipitantCompound.concept.invalid_reason":null,"objectMetaboliteCompound.id":null,"objectMetaboliteCompound.name":null,"objectMetaboliteCompound.unii":null,"objectMetaboliteCompound.inChIKey":null,"objectMetaboliteCompound.publicDescription":null,"objectMetaboliteCompound.internalComment":null,"objectMetaboliteCompound.conceptId":null,"objectMetaboliteCompound.enantiomerOfId":null,"objectMetaboliteCompound.concept.conceptId":null,"objectMetaboliteCompound.concept.conceptName":null,"objectMetaboliteCompound.concept.domainId":null,"objectMetaboliteCompound.concept.vocabularyId":null,"objectMetaboliteCompound.concept.conceptClassId":null,"objectMetaboliteCompound.concept.standardConcept":null,"objectMetaboliteCompound.concept.conceptCode":null,"objectMetaboliteCompound.concept.validStartDate":null,"objectMetaboliteCompound.concept.validEndDate":null,"objectMetaboliteCompound.concept.invalid_reason":null,"enzymes.id":13,"enzymes.name":"CYP3A4","enzymes.conceptId":4306811,"enzymes.experiment_enzyme_xref.enzymeId":13,"enzymes.experiment_enzyme_xref.experimentId":297,"transporters.id":null,"transporters.name":null,"transporters.conceptId":null,"transporters.experiment_transporter_xref.experimentId":null,"transporters.experiment_transporter_xref.transporterId":null,"quantifiedMetabolites.id":null,"quantifiedMetabolites.name":null,"quantifiedMetabolites.unii":null,"quantifiedMetabolites.inChIKey":null,"quantifiedMetabolites.publicDescription":null,"quantifiedMetabolites.internalComment":null,"quantifiedMetabolites.conceptId":null,"quantifiedMetabolites.enantiomerOfId":null,"quantifiedMetabolites.experiment_quantified_metabolite_xref.com":null,"quantifiedMetabolites.experiment_quantified_metabolite_xref.exp":null,"study.id":73,"study.uid":"NPDI-ftEv0g","study.name":"In vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis canadensis","study.naturalProduct.name":"Goldenseal","study.naturalProduct.itis":null,"study.naturalProduct.srs":"66690655-f406-4d67-96e3-2066aafee8d5","study.naturalProduct.source_id":"","study.naturalProduct.conceptId":null,"study.naturalProduct.concept.conceptId":null,"study.naturalProduct.concept.conceptName":null,"study.naturalProduct.concept.domainId":null,"study.naturalProduct.concept.vocabularyId":null,"study.naturalProduct.concept.conceptClassId":null,"study.naturalProduct.concept.standardConcept":null,"study.naturalProduct.concept.conceptCode":null,"study.naturalProduct.concept.validStartDate":null,"study.naturalProduct.concept.validEndDate":null,"study.naturalProduct.concept.invalid_reason":null,"study.compound.id":null,"study.compound.name":null,"study.compound.unii":null,"study.compound.inChIKey":null,"study.compound.publicDescription":null,"study.compound.internalComment":null,"study.compound.conceptId":null,"study.compound.enantiomerOfId":null,"study.studySourceType.id":1,"study.studySourceType.name":"Published report","testSystem.id":null,"testSystem.name":null,"testSystem.sortOrder":null,"testSystem.conceptId":null,"testSystem.categoryId":null,"testSystem.category.id":null,"testSystem.category.name":null,"testSystem.category.sortOrder":null,"testSystem.category.requiresCytochromeB5":null,"cytochromeB5.id":null,"cytochromeB5.name":null,"cytochromeB5.sortOrder":null,"cytochromeB5.conceptId":null,"controlDataExperiment.id":null,"controlDataExperiment.uid":null,"controlDataExperiment.name":null,"controlDataExperiment.overallEffect":null,"controlDataExperiment.isControlData":null,"controlDataExperiment.isIc50Shift":null,"controlDataExperiment.croCutoff":null,"controlDataExperiment.croIdentifier":null,"controlDataExperiment.comment":null,"controlDataExperiment.experimentalConditionsComment":null,"controlDataExperiment.resultsComment":null,"controlDataExperiment.internalComment":null,"controlDataExperiment.objectCompoundId":null,"controlDataExperiment.objectMetaboliteCompoundId":null,"controlDataExperiment.precipitantCompoundId":null,"controlDataExperiment.cytochromeB5Id":null,"controlDataExperiment.studyId":null,"controlDataExperiment.experimentTypeId":null,"controlDataExperiment.testSystemId":null,"controlDataExperiment.ic50ShiftExperimentId":null,"controlDataExperiment.controlDataExperimentId":null,"controlDataExperiment.controlDataForExperimentId":null,"controlDataExperiment.naturalProductSampleId":null,"controlDataExperiment.experimentType.id":null,"controlDataExperiment.experimentType.name":null,"controlDataExperiment.experimentType.isInVitro":null,"controlDataExperiment.experimentType.isTransporter":null,"controlDataExperiment.experimentType.isEnzyme":null,"controlDataExperiment.experimentType.purl":null,"controlDataExperiment.objectCompound.id":null,"controlDataExperiment.objectCompound.name":null,"controlDataExperiment.objectCompound.unii":null,"controlDataExperiment.objectCompound.inChIKey":null,"controlDataExperiment.objectCompound.publicDescription":null,"controlDataExperiment.objectCompound.internalComment":null,"controlDataExperiment.objectCompound.conceptId":null,"controlDataExperiment.objectCompound.enantiomerOfId":null,"controlDataExperiment.precipitantCompound.id":null,"controlDataExperiment.precipitantCompound.name":null,"controlDataExperiment.precipitantCompound.unii":null,"controlDataExperiment.precipitantCompound.inChIKey":null,"controlDataExperiment.precipitantCompound.publicDescription":null,"controlDataExperiment.precipitantCompound.internalComment":null,"controlDataExperiment.precipitantCompound.conceptId":null,"controlDataExperiment.precipitantCompound.enantiomerOfId":null,"controlDataExperiment.objectMetaboliteCompound.id":null,"controlDataExperiment.objectMetaboliteCompound.name":null,"controlDataExperiment.objectMetaboliteCompound.unii":null,"controlDataExperiment.objectMetaboliteCompound.inChIKey":null,"controlDataExperiment.objectMetaboliteCompound.publicDescriptio":null,"controlDataExperiment.objectMetaboliteCompound.internalComment":null,"controlDataExperiment.objectMetaboliteCompound.conceptId":null,"controlDataExperiment.objectMetaboliteCompound.enantiomerOfId":null,"controlDataExperiment.enzymes.id":null,"controlDataExperiment.enzymes.name":null,"controlDataExperiment.enzymes.conceptId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.enzymeId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.experiment":null,"controlDataExperiment.transporters.id":null,"controlDataExperiment.transporters.name":null,"controlDataExperiment.transporters.conceptId":null,"controlDataExperiment.transporters.experiment_transporter_xref.":null,"controlDataExperiment.quantifiedMetabolites.id":null,"controlDataExperiment.quantifiedMetabolites.name":null,"controlDataExperiment.quantifiedMetabolites.unii":null,"controlDataExperiment.quantifiedMetabolites.inChIKey":null,"controlDataExperiment.quantifiedMetabolites.publicDescription":null,"controlDataExperiment.quantifiedMetabolites.internalComment":null,"controlDataExperiment.quantifiedMetabolites.conceptId":null,"controlDataExperiment.quantifiedMetabolites.enantiomerOfId":null,"controlDataExperiment.quantifiedMetabolites.experiment_quantifi":null,"experimentAnswers.id":7054,"experimentAnswers.text":null,"experimentAnswers.answerId":706,"experimentAnswers.experimentId":297,"experimentAnswers.questionId":128,"experimentAnswers.question.id":128,"experimentAnswers.question.text":"Adverse event classes","experimentAnswers.question.required":false,"experimentAnswers.question.maxAnswers":100,"experimentAnswers.question.type":null,"experimentAnswers.question.conceptId":null,"experimentAnswers.question.answers.id":725,"experimentAnswers.question.answers.text":"Vascular disorder","experimentAnswers.question.answers.sortOrder":null,"experimentAnswers.question.answers.conceptId":37600000,"experimentAnswers.question.answers.questionId":128,"experimentAnswers.answer.id":706,"experimentAnswers.answer.text":"Gastrointestinal disorders","experimentAnswers.answer.sortOrder":null,"experimentAnswers.answer.conceptId":35700000,"experimentAnswers.answer.questionId":128},{"id":297,"uid":"NPDI-Bi2fGw","name":"CYP3A4 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Interaction","experimentType.isInVitro":false,"experimentType.isTransporter":false,"experimentType.isEnzyme":false,"experimentType.purl":"http://purl.obolibrary.org/obo/DIDEO_00000071","objectCompound.id":26,"objectCompound.name":"midazolam","objectCompound.unii":"R60L0SM5BC","objectCompound.inChIKey":"DDLIGBOFAVUZHB-UHFFFAOYSA-N","objectCompound.publicDescription":null,"objectCompound.internalComment":null,"objectCompound.conceptId":708298,"objectCompound.enantiomerOfId":null,"objectCompound.concept.conceptId":708298,"objectCompound.concept.conceptName":"Midazolam","objectCompound.concept.domainId":"Drug","objectCompound.concept.vocabularyId":"RxNorm","objectCompound.concept.conceptClassId":"Ingredient","objectCompound.concept.standardConcept":"S","objectCompound.concept.conceptCode":"6960","objectCompound.concept.validStartDate":"1970-01-01T00:00:00.000Z","objectCompound.concept.validEndDate":"2099-12-31T00:00:00.000Z","objectCompound.concept.invalid_reason":null,"precipitantCompound.id":127,"precipitantCompound.name":"goldenseal 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis canadensis","study.naturalProduct.name":"Goldenseal","study.naturalProduct.itis":null,"study.naturalProduct.srs":"66690655-f406-4d67-96e3-2066aafee8d5","study.naturalProduct.source_id":"","study.naturalProduct.conceptId":null,"study.naturalProduct.concept.conceptId":null,"study.naturalProduct.concept.conceptName":null,"study.naturalProduct.concept.domainId":null,"study.naturalProduct.concept.vocabularyId":null,"study.naturalProduct.concept.conceptClassId":null,"study.naturalProduct.concept.standardConcept":null,"study.naturalProduct.concept.conceptCode":null,"study.naturalProduct.concept.validStartDate":null,"study.naturalProduct.concept.validEndDate":null,"study.naturalProduct.concept.invalid_reason":null,"study.compound.id":null,"study.compound.name":null,"study.compound.unii":null,"study.compound.inChIKey":null,"study.compound.publicDescription":null,"study.compound.internalComment":null,"study.compound.conceptId":null,"study.compound.enantiomerOfId":null,"study.studySourceType.id":1,"study.studySourceType.name":"Published report","testSystem.id":null,"testSystem.name":null,"testSystem.sortOrder":null,"testSystem.conceptId":null,"testSystem.categoryId":null,"testSystem.category.id":null,"testSystem.category.name":null,"testSystem.category.sortOrder":null,"testSystem.category.requiresCytochromeB5":null,"cytochromeB5.id":null,"cytochromeB5.name":null,"cytochromeB5.sortOrder":null,"cytochromeB5.conceptId":null,"controlDataExperiment.id":null,"controlDataExperiment.uid":null,"controlDataExperiment.name":null,"controlDataExperiment.overallEffect":null,"controlDataExperiment.isControlData":null,"controlDataExperiment.isIc50Shift":null,"controlDataExperiment.croCutoff":null,"controlDataExperiment.croIdentifier":null,"controlDataExperiment.comment":null,"controlDataExperiment.experimentalConditionsComment":null,"controlDataExperiment.resultsComment":null,"controlDataExperiment.internalComment":null,"controlDataExperiment.objectCompoundId":null,"controlDataExperiment.objectMetaboliteCompoundId":null,"controlDataExperiment.precipitantCompoundId":null,"controlDataExperiment.cytochromeB5Id":null,"controlDataExperiment.studyId":null,"controlDataExperiment.experimentTypeId":null,"controlDataExperiment.testSystemId":null,"controlDataExperiment.ic50ShiftExperimentId":null,"controlDataExperiment.controlDataExperimentId":null,"controlDataExperiment.controlDataForExperimentId":null,"controlDataExperiment.naturalProductSampleId":null,"controlDataExperiment.experimentType.id":null,"controlDataExperiment.experimentType.name":null,"controlDataExperiment.experimentType.isInVitro":null,"controlDataExperiment.experimentType.isTransporter":null,"controlDataExperiment.experimentType.isEnzyme":null,"controlDataExperiment.experimentType.purl":null,"controlDataExperiment.objectCompound.id":null,"controlDataExperiment.objectCompound.name":null,"controlDataExperiment.objectCompound.unii":null,"controlDataExperiment.objectCompound.inChIKey":null,"controlDataExperiment.objectCompound.publicDescription":null,"controlDataExperiment.objectCompound.internalComment":null,"controlDataExperiment.objectCompound.conceptId":null,"controlDataExperiment.objectCompound.enantiomerOfId":null,"controlDataExperiment.precipitantCompound.id":null,"controlDataExperiment.precipitantCompound.name":null,"controlDataExperiment.precipitantCompound.unii":null,"controlDataExperiment.precipitantCompound.inChIKey":null,"controlDataExperiment.precipitantCompound.publicDescription":null,"controlDataExperiment.precipitantCompound.internalComment":null,"controlDataExperiment.precipitantCompound.conceptId":null,"controlDataExperiment.precipitantCompound.enantiomerOfId":null,"controlDataExperiment.objectMetaboliteCompound.id":null,"controlDataExperiment.objectMetaboliteCompound.name":null,"controlDataExperiment.objectMetaboliteCompound.unii":null,"controlDataExperiment.objectMetaboliteCompound.inChIKey":null,"controlDataExperiment.objectMetaboliteCompound.publicDescriptio":null,"controlDataExperiment.objectMetaboliteCompound.internalComment":null,"controlDataExperiment.objectMetaboliteCompound.conceptId":null,"controlDataExperiment.objectMetaboliteCompound.enantiomerOfId":null,"controlDataExperiment.enzymes.id":null,"controlDataExperiment.enzymes.name":null,"controlDataExperiment.enzymes.conceptId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.enzymeId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.experiment":null,"controlDataExperiment.transporters.id":null,"controlDataExperiment.transporters.name":null,"controlDataExperiment.transporters.conceptId":null,"controlDataExperiment.transporters.experiment_transporter_xref.":null,"controlDataExperiment.quantifiedMetabolites.id":null,"controlDataExperiment.quantifiedMetabolites.name":null,"controlDataExperiment.quantifiedMetabolites.unii":null,"controlDataExperiment.quantifiedMetabolites.inChIKey":null,"controlDataExperiment.quantifiedMetabolites.publicDescription":null,"controlDataExperiment.quantifiedMetabolites.internalComment":null,"controlDataExperiment.quantifiedMetabolites.conceptId":null,"controlDataExperiment.quantifiedMetabolites.enantiomerOfId":null,"controlDataExperiment.quantifiedMetabolites.experiment_quantifi":null,"experimentAnswers.id":7055,"experimentAnswers.text":null,"experimentAnswers.answerId":707,"experimentAnswers.experimentId":297,"experimentAnswers.questionId":128,"experimentAnswers.question.id":128,"experimentAnswers.question.text":"Adverse event classes","experimentAnswers.question.required":false,"experimentAnswers.question.maxAnswers":100,"experimentAnswers.question.type":null,"experimentAnswers.question.conceptId":null,"experimentAnswers.question.answers.id":701,"experimentAnswers.question.answers.text":"Cardiac disorders","experimentAnswers.question.answers.sortOrder":null,"experimentAnswers.question.answers.conceptId":35200000,"experimentAnswers.question.answers.questionId":128,"experimentAnswers.answer.id":707,"experimentAnswers.answer.text":"General disorders and administration site conditions","experimentAnswers.answer.sortOrder":null,"experimentAnswers.answer.conceptId":35800000,"experimentAnswers.answer.questionId":128},{"id":297,"uid":"NPDI-Bi2fGw","name":"CYP3A4 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Interaction","experimentType.isInVitro":false,"experimentType.isTransporter":false,"experimentType.isEnzyme":false,"experimentType.purl":"http://purl.obolibrary.org/obo/DIDEO_00000071","objectCompound.id":26,"objectCompound.name":"midazolam","objectCompound.unii":"R60L0SM5BC","objectCompound.inChIKey":"DDLIGBOFAVUZHB-UHFFFAOYSA-N","objectCompound.publicDescription":null,"objectCompound.internalComment":null,"objectCompound.conceptId":708298,"objectCompound.enantiomerOfId":null,"objectCompound.concept.conceptId":708298,"objectCompound.concept.conceptName":"Midazolam","objectCompound.concept.domainId":"Drug","objectCompound.concept.vocabularyId":"RxNorm","objectCompound.concept.conceptClassId":"Ingredient","objectCompound.concept.standardConcept":"S","objectCompound.concept.conceptCode":"6960","objectCompound.concept.validStartDate":"1970-01-01T00:00:00.000Z","objectCompound.concept.validEndDate":"2099-12-31T00:00:00.000Z","objectCompound.concept.invalid_reason":null,"precipitantCompound.id":127,"precipitantCompound.name":"goldenseal 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extract","precipitantCompound.unii":null,"precipitantCompound.inChIKey":null,"precipitantCompound.publicDescription":null,"precipitantCompound.internalComment":null,"precipitantCompound.conceptId":null,"precipitantCompound.enantiomerOfId":null,"precipitantCompound.concept.conceptId":null,"precipitantCompound.concept.conceptName":null,"precipitantCompound.concept.domainId":null,"precipitantCompound.concept.vocabularyId":null,"precipitantCompound.concept.conceptClassId":null,"precipitantCompound.concept.standardConcept":null,"precipitantCompound.concept.conceptCode":null,"precipitantCompound.concept.validStartDate":null,"precipitantCompound.concept.validEndDate":null,"precipitantCompound.concept.invalid_reason":null,"objectMetaboliteCompound.id":null,"objectMetaboliteCompound.name":null,"objectMetaboliteCompound.unii":null,"objectMetaboliteCompound.inChIKey":null,"objectMetaboliteCompound.publicDescription":null,"objectMetaboliteCompound.internalComment":null,"objectMetaboliteCompound.conceptId":null,"objectMetaboliteCompound.enantiomerOfId":null,"objectMetaboliteCompound.concept.conceptId":null,"objectMetaboliteCompound.concept.conceptName":null,"objectMetaboliteCompound.concept.domainId":null,"objectMetaboliteCompound.concept.vocabularyId":null,"objectMetaboliteCompound.concept.conceptClassId":null,"objectMetaboliteCompound.concept.standardConcept":null,"objectMetaboliteCompound.concept.conceptCode":null,"objectMetaboliteCompound.concept.validStartDate":null,"objectMetaboliteCompound.concept.validEndDate":null,"objectMetaboliteCompound.concept.invalid_reason":null,"enzymes.id":13,"enzymes.name":"CYP3A4","enzymes.conceptId":4306811,"enzymes.experiment_enzyme_xref.enzymeId":13,"enzymes.experiment_enzyme_xref.experimentId":297,"transporters.id":null,"transporters.name":null,"transporters.conceptId":null,"transporters.experiment_transporter_xref.experimentId":null,"transporters.experiment_transporter_xref.transporterId":null,"quantifiedMetabolites.id":null,"quantifiedMetabolites.name":null,"quantifiedMetabolites.unii":null,"quantifiedMetabolites.inChIKey":null,"quantifiedMetabolites.publicDescription":null,"quantifiedMetabolites.internalComment":null,"quantifiedMetabolites.conceptId":null,"quantifiedMetabolites.enantiomerOfId":null,"quantifiedMetabolites.experiment_quantified_metabolite_xref.com":null,"quantifiedMetabolites.experiment_quantified_metabolite_xref.exp":null,"study.id":73,"study.uid":"NPDI-ftEv0g","study.name":"In vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis canadensis","study.naturalProduct.name":"Goldenseal","study.naturalProduct.itis":null,"study.naturalProduct.srs":"66690655-f406-4d67-96e3-2066aafee8d5","study.naturalProduct.source_id":"","study.naturalProduct.conceptId":null,"study.naturalProduct.concept.conceptId":null,"study.naturalProduct.concept.conceptName":null,"study.naturalProduct.concept.domainId":null,"study.naturalProduct.concept.vocabularyId":null,"study.naturalProduct.concept.conceptClassId":null,"study.naturalProduct.concept.standardConcept":null,"study.naturalProduct.concept.conceptCode":null,"study.naturalProduct.concept.validStartDate":null,"study.naturalProduct.concept.validEndDate":null,"study.naturalProduct.concept.invalid_reason":null,"study.compound.id":null,"study.compound.name":null,"study.compound.unii":null,"study.compound.inChIKey":null,"study.compound.publicDescription":null,"study.compound.internalComment":null,"study.compound.conceptId":null,"study.compound.enantiomerOfId":null,"study.studySourceType.id":1,"study.studySourceType.name":"Published report","testSystem.id":null,"testSystem.name":null,"testSystem.sortOrder":null,"testSystem.conceptId":null,"testSystem.categoryId":null,"testSystem.category.id":null,"testSystem.category.name":null,"testSystem.category.sortOrder":null,"testSystem.category.requiresCytochromeB5":null,"cytochromeB5.id":null,"cytochromeB5.name":null,"cytochromeB5.sortOrder":null,"cytochromeB5.conceptId":null,"controlDataExperiment.id":null,"controlDataExperiment.uid":null,"controlDataExperiment.name":null,"controlDataExperiment.overallEffect":null,"controlDataExperiment.isControlData":null,"controlDataExperiment.isIc50Shift":null,"controlDataExperiment.croCutoff":null,"controlDataExperiment.croIdentifier":null,"controlDataExperiment.comment":null,"controlDataExperiment.experimentalConditionsComment":null,"controlDataExperiment.resultsComment":null,"controlDataExperiment.internalComment":null,"controlDataExperiment.objectCompoundId":null,"controlDataExperiment.objectMetaboliteCompoundId":null,"controlDataExperiment.precipitantCompoundId":null,"controlDataExperiment.cytochromeB5Id":null,"controlDataExperiment.studyId":null,"controlDataExperiment.experimentTypeId":null,"controlDataExperiment.testSystemId":null,"controlDataExperiment.ic50ShiftExperimentId":null,"controlDataExperiment.controlDataExperimentId":null,"controlDataExperiment.controlDataForExperimentId":null,"controlDataExperiment.naturalProductSampleId":null,"controlDataExperiment.experimentType.id":null,"controlDataExperiment.experimentType.name":null,"controlDataExperiment.experimentType.isInVitro":null,"controlDataExperiment.experimentType.isTransporter":null,"controlDataExperiment.experimentType.isEnzyme":null,"controlDataExperiment.experimentType.purl":null,"controlDataExperiment.objectCompound.id":null,"controlDataExperiment.objectCompound.name":null,"controlDataExperiment.objectCompound.unii":null,"controlDataExperiment.objectCompound.inChIKey":null,"controlDataExperiment.objectCompound.publicDescription":null,"controlDataExperiment.objectCompound.internalComment":null,"controlDataExperiment.objectCompound.conceptId":null,"controlDataExperiment.objectCompound.enantiomerOfId":null,"controlDataExperiment.precipitantCompound.id":null,"controlDataExperiment.precipitantCompound.name":null,"controlDataExperiment.precipitantCompound.unii":null,"controlDataExperiment.precipitantCompound.inChIKey":null,"controlDataExperiment.precipitantCompound.publicDescription":null,"controlDataExperiment.precipitantCompound.internalComment":null,"controlDataExperiment.precipitantCompound.conceptId":null,"controlDataExperiment.precipitantCompound.enantiomerOfId":null,"controlDataExperiment.objectMetaboliteCompound.id":null,"controlDataExperiment.objectMetaboliteCompound.name":null,"controlDataExperiment.objectMetaboliteCompound.unii":null,"controlDataExperiment.objectMetaboliteCompound.inChIKey":null,"controlDataExperiment.objectMetaboliteCompound.publicDescriptio":null,"controlDataExperiment.objectMetaboliteCompound.internalComment":null,"controlDataExperiment.objectMetaboliteCompound.conceptId":null,"controlDataExperiment.objectMetaboliteCompound.enantiomerOfId":null,"controlDataExperiment.enzymes.id":null,"controlDataExperiment.enzymes.name":null,"controlDataExperiment.enzymes.conceptId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.enzymeId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.experiment":null,"controlDataExperiment.transporters.id":null,"controlDataExperiment.transporters.name":null,"controlDataExperiment.transporters.conceptId":null,"controlDataExperiment.transporters.experiment_transporter_xref.":null,"controlDataExperiment.quantifiedMetabolites.id":null,"controlDataExperiment.quantifiedMetabolites.name":null,"controlDataExperiment.quantifiedMetabolites.unii":null,"controlDataExperiment.quantifiedMetabolites.inChIKey":null,"controlDataExperiment.quantifiedMetabolites.publicDescription":null,"controlDataExperiment.quantifiedMetabolites.internalComment":null,"controlDataExperiment.quantifiedMetabolites.conceptId":null,"controlDataExperiment.quantifiedMetabolites.enantiomerOfId":null,"controlDataExperiment.quantifiedMetabolites.experiment_quantifi":null,"experimentAnswers.id":7055,"experimentAnswers.text":null,"experimentAnswers.answerId":707,"experimentAnswers.experimentId":297,"experimentAnswers.questionId":128,"experimentAnswers.question.id":128,"experimentAnswers.question.text":"Adverse event classes","experimentAnswers.question.required":false,"experimentAnswers.question.maxAnswers":100,"experimentAnswers.question.type":null,"experimentAnswers.question.conceptId":null,"experimentAnswers.question.answers.id":703,"experimentAnswers.question.answers.text":"Ear and labyrinth disorders","experimentAnswers.question.answers.sortOrder":null,"experimentAnswers.question.answers.conceptId":35400000,"experimentAnswers.question.answers.questionId":128,"experimentAnswers.answer.id":707,"experimentAnswers.answer.text":"General disorders and administration site conditions","experimentAnswers.answer.sortOrder":null,"experimentAnswers.answer.conceptId":35800000,"experimentAnswers.answer.questionId":128},{"id":297,"uid":"NPDI-Bi2fGw","name":"CYP3A4 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Interaction","experimentType.isInVitro":false,"experimentType.isTransporter":false,"experimentType.isEnzyme":false,"experimentType.purl":"http://purl.obolibrary.org/obo/DIDEO_00000071","objectCompound.id":26,"objectCompound.name":"midazolam","objectCompound.unii":"R60L0SM5BC","objectCompound.inChIKey":"DDLIGBOFAVUZHB-UHFFFAOYSA-N","objectCompound.publicDescription":null,"objectCompound.internalComment":null,"objectCompound.conceptId":708298,"objectCompound.enantiomerOfId":null,"objectCompound.concept.conceptId":708298,"objectCompound.concept.conceptName":"Midazolam","objectCompound.concept.domainId":"Drug","objectCompound.concept.vocabularyId":"RxNorm","objectCompound.concept.conceptClassId":"Ingredient","objectCompound.concept.standardConcept":"S","objectCompound.concept.conceptCode":"6960","objectCompound.concept.validStartDate":"1970-01-01T00:00:00.000Z","objectCompound.concept.validEndDate":"2099-12-31T00:00:00.000Z","objectCompound.concept.invalid_reason":null,"precipitantCompound.id":127,"precipitantCompound.name":"goldenseal 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis 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Interaction","experimentType.isInVitro":false,"experimentType.isTransporter":false,"experimentType.isEnzyme":false,"experimentType.purl":"http://purl.obolibrary.org/obo/DIDEO_00000071","objectCompound.id":26,"objectCompound.name":"midazolam","objectCompound.unii":"R60L0SM5BC","objectCompound.inChIKey":"DDLIGBOFAVUZHB-UHFFFAOYSA-N","objectCompound.publicDescription":null,"objectCompound.internalComment":null,"objectCompound.conceptId":708298,"objectCompound.enantiomerOfId":null,"objectCompound.concept.conceptId":708298,"objectCompound.concept.conceptName":"Midazolam","objectCompound.concept.domainId":"Drug","objectCompound.concept.vocabularyId":"RxNorm","objectCompound.concept.conceptClassId":"Ingredient","objectCompound.concept.standardConcept":"S","objectCompound.concept.conceptCode":"6960","objectCompound.concept.validStartDate":"1970-01-01T00:00:00.000Z","objectCompound.concept.validEndDate":"2099-12-31T00:00:00.000Z","objectCompound.concept.invalid_reason":null,"precipitantCompound.id":127,"precipitantCompound.name":"goldenseal 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis 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event classes","experimentAnswers.question.required":false,"experimentAnswers.question.maxAnswers":100,"experimentAnswers.question.type":null,"experimentAnswers.question.conceptId":null,"experimentAnswers.question.answers.id":706,"experimentAnswers.question.answers.text":"Gastrointestinal disorders","experimentAnswers.question.answers.sortOrder":null,"experimentAnswers.question.answers.conceptId":35700000,"experimentAnswers.question.answers.questionId":128,"experimentAnswers.answer.id":707,"experimentAnswers.answer.text":"General disorders and administration site conditions","experimentAnswers.answer.sortOrder":null,"experimentAnswers.answer.conceptId":35800000,"experimentAnswers.answer.questionId":128},{"id":297,"uid":"NPDI-Bi2fGw","name":"CYP3A4 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Interaction","experimentType.isInVitro":false,"experimentType.isTransporter":false,"experimentType.isEnzyme":false,"experimentType.purl":"http://purl.obolibrary.org/obo/DIDEO_00000071","objectCompound.id":26,"objectCompound.name":"midazolam","objectCompound.unii":"R60L0SM5BC","objectCompound.inChIKey":"DDLIGBOFAVUZHB-UHFFFAOYSA-N","objectCompound.publicDescription":null,"objectCompound.internalComment":null,"objectCompound.conceptId":708298,"objectCompound.enantiomerOfId":null,"objectCompound.concept.conceptId":708298,"objectCompound.concept.conceptName":"Midazolam","objectCompound.concept.domainId":"Drug","objectCompound.concept.vocabularyId":"RxNorm","objectCompound.concept.conceptClassId":"Ingredient","objectCompound.concept.standardConcept":"S","objectCompound.concept.conceptCode":"6960","objectCompound.concept.validStartDate":"1970-01-01T00:00:00.000Z","objectCompound.concept.validEndDate":"2099-12-31T00:00:00.000Z","objectCompound.concept.invalid_reason":null,"precipitantCompound.id":127,"precipitantCompound.name":"goldenseal root 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis canadensis","study.naturalProduct.name":"Goldenseal","study.naturalProduct.itis":null,"study.naturalProduct.srs":"66690655-f406-4d67-96e3-2066aafee8d5","study.naturalProduct.source_id":"","study.naturalProduct.conceptId":null,"study.naturalProduct.concept.conceptId":null,"study.naturalProduct.concept.conceptName":null,"study.naturalProduct.concept.domainId":null,"study.naturalProduct.concept.vocabularyId":null,"study.naturalProduct.concept.conceptClassId":null,"study.naturalProduct.concept.standardConcept":null,"study.naturalProduct.concept.conceptCode":null,"study.naturalProduct.concept.validStartDate":null,"study.naturalProduct.concept.validEndDate":null,"study.naturalProduct.concept.invalid_reason":null,"study.compound.id":null,"study.compound.name":null,"study.compound.unii":null,"study.compound.inChIKey":null,"study.compound.publicDescription":null,"study.compound.internalComment":null,"study.compound.conceptId":null,"study.compound.enantiomerOfId":null,"study.studySourceType.id":1,"study.studySourceType.name":"Published report","testSystem.id":null,"testSystem.name":null,"testSystem.sortOrder":null,"testSystem.conceptId":null,"testSystem.categoryId":null,"testSystem.category.id":null,"testSystem.category.name":null,"testSystem.category.sortOrder":null,"testSystem.category.requiresCytochromeB5":null,"cytochromeB5.id":null,"cytochromeB5.name":null,"cytochromeB5.sortOrder":null,"cytochromeB5.conceptId":null,"controlDataExperiment.id":null,"controlDataExperiment.uid":null,"controlDataExperiment.name":null,"controlDataExperiment.overallEffect":null,"controlDataExperiment.isControlData":null,"controlDataExperiment.isIc50Shift":null,"controlDataExperiment.croCutoff":null,"controlDataExperiment.croIdentifier":null,"controlDataExperiment.comment":null,"controlDataExperiment.experimentalConditionsComment":null,"controlDataExperiment.resultsComment":null,"controlDataExperiment.internalComment":null,"controlDataExperiment.objectCompoundId":null,"controlDataExperiment.objectMetaboliteCompoundId":null,"controlDataExperiment.precipitantCompoundId":null,"controlDataExperiment.cytochromeB5Id":null,"controlDataExperiment.studyId":null,"controlDataExperiment.experimentTypeId":null,"controlDataExperiment.testSystemId":null,"controlDataExperiment.ic50ShiftExperimentId":null,"controlDataExperiment.controlDataExperimentId":null,"controlDataExperiment.controlDataForExperimentId":null,"controlDataExperiment.naturalProductSampleId":null,"controlDataExperiment.experimentType.id":null,"controlDataExperiment.experimentType.name":null,"controlDataExperiment.experimentType.isInVitro":null,"controlDataExperiment.experimentType.isTransporter":null,"controlDataExperiment.experimentType.isEnzyme":null,"controlDataExperiment.experimentType.purl":null,"controlDataExperiment.objectCompound.id":null,"controlDataExperiment.objectCompound.name":null,"controlDataExperiment.objectCompound.unii":null,"controlDataExperiment.objectCompound.inChIKey":null,"controlDataExperiment.objectCompound.publicDescription":null,"controlDataExperiment.objectCompound.internalComment":null,"controlDataExperiment.objectCompound.conceptId":null,"controlDataExperiment.objectCompound.enantiomerOfId":null,"controlDataExperiment.precipitantCompound.id":null,"controlDataExperiment.precipitantCompound.name":null,"controlDataExperiment.precipitantCompound.unii":null,"controlDataExperiment.precipitantCompound.inChIKey":null,"controlDataExperiment.precipitantCompound.publicDescription":null,"controlDataExperiment.precipitantCompound.internalComment":null,"controlDataExperiment.precipitantCompound.conceptId":null,"controlDataExperiment.precipitantCompound.enantiomerOfId":null,"controlDataExperiment.objectMetaboliteCompound.id":null,"controlDataExperiment.objectMetaboliteCompound.name":null,"controlDataExperiment.objectMetaboliteCompound.unii":null,"controlDataExperiment.objectMetaboliteCompound.inChIKey":null,"controlDataExperiment.objectMetaboliteCompound.publicDescriptio":null,"controlDataExperiment.objectMetaboliteCompound.internalComment":null,"controlDataExperiment.objectMetaboliteCompound.conceptId":null,"controlDataExperiment.objectMetaboliteCompound.enantiomerOfId":null,"controlDataExperiment.enzymes.id":null,"controlDataExperiment.enzymes.name":null,"controlDataExperiment.enzymes.conceptId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.enzymeId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.experiment":null,"controlDataExperiment.transporters.id":null,"controlDataExperiment.transporters.name":null,"controlDataExperiment.transporters.conceptId":null,"controlDataExperiment.transporters.experiment_transporter_xref.":null,"controlDataExperiment.quantifiedMetabolites.id":null,"controlDataExperiment.quantifiedMetabolites.name":null,"controlDataExperiment.quantifiedMetabolites.unii":null,"controlDataExperiment.quantifiedMetabolites.inChIKey":null,"controlDataExperiment.quantifiedMetabolites.publicDescription":null,"controlDataExperiment.quantifiedMetabolites.internalComment":null,"controlDataExperiment.quantifiedMetabolites.conceptId":null,"controlDataExperiment.quantifiedMetabolites.enantiomerOfId":null,"controlDataExperiment.quantifiedMetabolites.experiment_quantifi":null,"experimentAnswers.id":7055,"experimentAnswers.text":null,"experimentAnswers.answerId":707,"experimentAnswers.experimentId":297,"experimentAnswers.questionId":128,"experimentAnswers.question.id":128,"experimentAnswers.question.text":"Adverse 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis canadensis","study.naturalProduct.name":"Goldenseal","study.naturalProduct.itis":null,"study.naturalProduct.srs":"66690655-f406-4d67-96e3-2066aafee8d5","study.naturalProduct.source_id":"","study.naturalProduct.conceptId":null,"study.naturalProduct.concept.conceptId":null,"study.naturalProduct.concept.conceptName":null,"study.naturalProduct.concept.domainId":null,"study.naturalProduct.concept.vocabularyId":null,"study.naturalProduct.concept.conceptClassId":null,"study.naturalProduct.concept.standardConcept":null,"study.naturalProduct.concept.conceptCode":null,"study.naturalProduct.concept.validStartDate":null,"study.naturalProduct.concept.validEndDate":null,"study.naturalProduct.concept.invalid_reason":null,"study.compound.id":null,"study.compound.name":null,"study.compound.unii":null,"study.compound.inChIKey":null,"study.compound.publicDescription":null,"study.compound.internalComment":null,"study.compound.conceptId":null,"study.compound.enantiomerOfId":null,"study.studySourceType.id":1,"study.studySourceType.name":"Published report","testSystem.id":null,"testSystem.name":null,"testSystem.sortOrder":null,"testSystem.conceptId":null,"testSystem.categoryId":null,"testSystem.category.id":null,"testSystem.category.name":null,"testSystem.category.sortOrder":null,"testSystem.category.requiresCytochromeB5":null,"cytochromeB5.id":null,"cytochromeB5.name":null,"cytochromeB5.sortOrder":null,"cytochromeB5.conceptId":null,"controlDataExperiment.id":null,"controlDataExperiment.uid":null,"controlDataExperiment.name":null,"controlDataExperiment.overallEffect":null,"controlDataExperiment.isControlData":null,"controlDataExperiment.isIc50Shift":null,"controlDataExperiment.croCutoff":null,"controlDataExperiment.croIdentifier":null,"controlDataExperiment.comment":null,"controlDataExperiment.experimentalConditionsComment":null,"controlDataExperiment.resultsComment":null,"controlDataExperiment.internalComment":null,"controlDataExperiment.objectCompoundId":null,"controlDataExperiment.objectMetaboliteCompoundId":null,"controlDataExperiment.precipitantCompoundId":null,"controlDataExperiment.cytochromeB5Id":null,"controlDataExperiment.studyId":null,"controlDataExperiment.experimentTypeId":null,"controlDataExperiment.testSystemId":null,"controlDataExperiment.ic50ShiftExperimentId":null,"controlDataExperiment.controlDataExperimentId":null,"controlDataExperiment.controlDataForExperimentId":null,"controlDataExperiment.naturalProductSampleId":null,"controlDataExperiment.experimentType.id":null,"controlDataExperiment.experimentType.name":null,"controlDataExperiment.experimentType.isInVitro":null,"controlDataExperiment.experimentType.isTransporter":null,"controlDataExperiment.experimentType.isEnzyme":null,"controlDataExperiment.experimentType.purl":null,"controlDataExperiment.objectCompound.id":null,"controlDataExperiment.objectCompound.name":null,"controlDataExperiment.objectCompound.unii":null,"controlDataExperiment.objectCompound.inChIKey":null,"controlDataExperiment.objectCompound.publicDescription":null,"controlDataExperiment.objectCompound.internalComment":null,"controlDataExperiment.objectCompound.conceptId":null,"controlDataExperiment.objectCompound.enantiomerOfId":null,"controlDataExperiment.precipitantCompound.id":null,"controlDataExperiment.precipitantCompound.name":null,"controlDataExperiment.precipitantCompound.unii":null,"controlDataExperiment.precipitantCompound.inChIKey":null,"controlDataExperiment.precipitantCompound.publicDescription":null,"controlDataExperiment.precipitantCompound.internalComment":null,"controlDataExperiment.precipitantCompound.conceptId":null,"controlDataExperiment.precipitantCompound.enantiomerOfId":null,"controlDataExperiment.objectMetaboliteCompound.id":null,"controlDataExperiment.objectMetaboliteCompound.name":null,"controlDataExperiment.objectMetaboliteCompound.unii":null,"controlDataExperiment.objectMetaboliteCompound.inChIKey":null,"controlDataExperiment.objectMetaboliteCompound.publicDescriptio":null,"controlDataExperiment.objectMetaboliteCompound.internalComment":null,"controlDataExperiment.objectMetaboliteCompound.conceptId":null,"controlDataExperiment.objectMetaboliteCompound.enantiomerOfId":null,"controlDataExperiment.enzymes.id":null,"controlDataExperiment.enzymes.name":null,"controlDataExperiment.enzymes.conceptId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.enzymeId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.experiment":null,"controlDataExperiment.transporters.id":null,"controlDataExperiment.transporters.name":null,"controlDataExperiment.transporters.conceptId":null,"controlDataExperiment.transporters.experiment_transporter_xref.":null,"controlDataExperiment.quantifiedMetabolites.id":null,"controlDataExperiment.quantifiedMetabolites.name":null,"controlDataExperiment.quantifiedMetabolites.unii":null,"controlDataExperiment.quantifiedMetabolites.inChIKey":null,"controlDataExperiment.quantifiedMetabolites.publicDescription":null,"controlDataExperiment.quantifiedMetabolites.internalComment":null,"controlDataExperiment.quantifiedMetabolites.conceptId":null,"controlDataExperiment.quantifiedMetabolites.enantiomerOfId":null,"controlDataExperiment.quantifiedMetabolites.experiment_quantifi":null,"experimentAnswers.id":7055,"experimentAnswers.text":null,"experimentAnswers.answerId":707,"experimentAnswers.experimentId":297,"experimentAnswers.questionId":128,"experimentAnswers.question.id":128,"experimentAnswers.question.text":"Adverse event classes","experimentAnswers.question.required":false,"experimentAnswers.question.maxAnswers":100,"experimentAnswers.question.type":null,"experimentAnswers.question.conceptId":null,"experimentAnswers.question.answers.id":708,"experimentAnswers.question.answers.text":"Hepatobiliary disorders","experimentAnswers.question.answers.sortOrder":null,"experimentAnswers.question.answers.conceptId":35900000,"experimentAnswers.question.answers.questionId":128,"experimentAnswers.answer.id":707,"experimentAnswers.answer.text":"General disorders and administration site conditions","experimentAnswers.answer.sortOrder":null,"experimentAnswers.answer.conceptId":35800000,"experimentAnswers.answer.questionId":128},{"id":297,"uid":"NPDI-Bi2fGw","name":"CYP3A4 Experiment","overallEffect":1,"isControlData":false,"isIc50Shift":false,"croCutoff":null,"croIdentifier":null,"comment":null,"experimentalConditionsComment":null,"resultsComment":null,"internalComment":null,"objectCompoundId":26,"objectMetaboliteCompoundId":null,"precipitantCompoundId":127,"cytochromeB5Id":null,"studyId":73,"experimentTypeId":9,"testSystemId":null,"ic50ShiftExperimentId":null,"controlDataExperimentId":null,"controlDataForExperimentId":null,"naturalProductSampleId":null,"experimentType.id":9,"experimentType.name":"In Vivo Interaction","experimentType.isInVitro":false,"experimentType.isTransporter":false,"experimentType.isEnzyme":false,"experimentType.purl":"http://purl.obolibrary.org/obo/DIDEO_00000071","objectCompound.id":26,"objectCompound.name":"midazolam","objectCompound.unii":"R60L0SM5BC","objectCompound.inChIKey":"DDLIGBOFAVUZHB-UHFFFAOYSA-N","objectCompound.publicDescription":null,"objectCompound.internalComment":null,"objectCompound.conceptId":708298,"objectCompound.enantiomerOfId":null,"objectCompound.concept.conceptId":708298,"objectCompound.concept.conceptName":"Midazolam","objectCompound.concept.domainId":"Drug","objectCompound.concept.vocabularyId":"RxNorm","objectCompound.concept.conceptClassId":"Ingredient","objectCompound.concept.standardConcept":"S","objectCompound.concept.conceptCode":"6960","objectCompound.concept.validStartDate":"1970-01-01T00:00:00.000Z","objectCompound.concept.validEndDate":"2099-12-31T00:00:00.000Z","objectCompound.concept.invalid_reason":null,"precipitantCompound.id":127,"precipitantCompound.name":"goldenseal root extract","precipitantCompound.unii":null,"precipitantCompound.inChIKey":null,"precipitantCompound.publicDescription":null,"precipitantCompound.internalComment":null,"precipitantCompound.conceptId":null,"precipitantCompound.enantiomerOfId":null,"precipitantCompound.concept.conceptId":null,"precipitantCompound.concept.conceptName":null,"precipitantCompound.concept.domainId":null,"precipitantCompound.concept.vocabularyId":null,"precipitantCompound.concept.conceptClassId":null,"precipitantCompound.concept.standardConcept":null,"precipitantCompound.concept.conceptCode":null,"precipitantCompound.concept.validStartDate":null,"precipitantCompound.concept.validEndDate":null,"precipitantCompound.concept.invalid_reason":null,"objectMetaboliteCompound.id":null,"objectMetaboliteCompound.name":null,"objectMetaboliteCompound.unii":null,"objectMetaboliteCompound.inChIKey":null,"objectMetaboliteCompound.publicDescription":null,"objectMetaboliteCompound.internalComment":null,"objectMetaboliteCompound.conceptId":null,"objectMetaboliteCompound.enantiomerOfId":null,"objectMetaboliteCompound.concept.conceptId":null,"objectMetaboliteCompound.concept.conceptName":null,"objectMetaboliteCompound.concept.domainId":null,"objectMetaboliteCompound.concept.vocabularyId":null,"objectMetaboliteCompound.concept.conceptClassId":null,"objectMetaboliteCompound.concept.standardConcept":null,"objectMetaboliteCompound.concept.conceptCode":null,"objectMetaboliteCompound.concept.validStartDate":null,"objectMetaboliteCompound.concept.validEndDate":null,"objectMetaboliteCompound.concept.invalid_reason":null,"enzymes.id":13,"enzymes.name":"CYP3A4","enzymes.conceptId":4306811,"enzymes.experiment_enzyme_xref.enzymeId":13,"enzymes.experiment_enzyme_xref.experimentId":297,"transporters.id":null,"transporters.name":null,"transporters.conceptId":null,"transporters.experiment_transporter_xref.experimentId":null,"transporters.experiment_transporter_xref.transporterId":null,"quantifiedMetabolites.id":null,"quantifiedMetabolites.name":null,"quantifiedMetabolites.unii":null,"quantifiedMetabolites.inChIKey":null,"quantifiedMetabolites.publicDescription":null,"quantifiedMetabolites.internalComment":null,"quantifiedMetabolites.conceptId":null,"quantifiedMetabolites.enantiomerOfId":null,"quantifiedMetabolites.experiment_quantified_metabolite_xref.com":null,"quantifiedMetabolites.experiment_quantified_metabolite_xref.exp":null,"study.id":73,"study.uid":"NPDI-ftEv0g","study.name":"In vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis 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event classes","experimentAnswers.question.required":false,"experimentAnswers.question.maxAnswers":100,"experimentAnswers.question.type":null,"experimentAnswers.question.conceptId":null,"experimentAnswers.question.answers.id":709,"experimentAnswers.question.answers.text":"Immune system disorders","experimentAnswers.question.answers.sortOrder":null,"experimentAnswers.question.answers.conceptId":36000000,"experimentAnswers.question.answers.questionId":128,"experimentAnswers.answer.id":707,"experimentAnswers.answer.text":"General disorders and administration site conditions","experimentAnswers.answer.sortOrder":null,"experimentAnswers.answer.conceptId":35800000,"experimentAnswers.answer.questionId":128},{"id":297,"uid":"NPDI-Bi2fGw","name":"CYP3A4 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis canadensis","study.naturalProduct.name":"Goldenseal","study.naturalProduct.itis":null,"study.naturalProduct.srs":"66690655-f406-4d67-96e3-2066aafee8d5","study.naturalProduct.source_id":"","study.naturalProduct.conceptId":null,"study.naturalProduct.concept.conceptId":null,"study.naturalProduct.concept.conceptName":null,"study.naturalProduct.concept.domainId":null,"study.naturalProduct.concept.vocabularyId":null,"study.naturalProduct.concept.conceptClassId":null,"study.naturalProduct.concept.standardConcept":null,"study.naturalProduct.concept.conceptCode":null,"study.naturalProduct.concept.validStartDate":null,"study.naturalProduct.concept.validEndDate":null,"study.naturalProduct.concept.invalid_reason":null,"study.compound.id":null,"study.compound.name":null,"study.compound.unii":null,"study.compound.inChIKey":null,"study.compound.publicDescription":null,"study.compound.internalComment":null,"study.compound.conceptId":null,"study.compound.enantiomerOfId":null,"study.studySourceType.id":1,"study.studySourceType.name":"Published report","testSystem.id":null,"testSystem.name":null,"testSystem.sortOrder":null,"testSystem.conceptId":null,"testSystem.categoryId":null,"testSystem.category.id":null,"testSystem.category.name":null,"testSystem.category.sortOrder":null,"testSystem.category.requiresCytochromeB5":null,"cytochromeB5.id":null,"cytochromeB5.name":null,"cytochromeB5.sortOrder":null,"cytochromeB5.conceptId":null,"controlDataExperiment.id":null,"controlDataExperiment.uid":null,"controlDataExperiment.name":null,"controlDataExperiment.overallEffect":null,"controlDataExperiment.isControlData":null,"controlDataExperiment.isIc50Shift":null,"controlDataExperiment.croCutoff":null,"controlDataExperiment.croIdentifier":null,"controlDataExperiment.comment":null,"controlDataExperiment.experimentalConditionsComment":null,"controlDataExperiment.resultsComment":null,"controlDataExperiment.internalComment":null,"controlDataExperiment.objectCompoundId":null,"controlDataExperiment.objectMetaboliteCompoundId":null,"controlDataExperiment.precipitantCompoundId":null,"controlDataExperiment.cytochromeB5Id":null,"controlDataExperiment.studyId":null,"controlDataExperiment.experimentTypeId":null,"controlDataExperiment.testSystemId":null,"controlDataExperiment.ic50ShiftExperimentId":null,"controlDataExperiment.controlDataExperimentId":null,"controlDataExperiment.controlDataForExperimentId":null,"controlDataExperiment.naturalProductSampleId":null,"controlDataExperiment.experimentType.id":null,"controlDataExperiment.experimentType.name":null,"controlDataExperiment.experimentType.isInVitro":null,"controlDataExperiment.experimentType.isTransporter":null,"controlDataExperiment.experimentType.isEnzyme":null,"controlDataExperiment.experimentType.purl":null,"controlDataExperiment.objectCompound.id":null,"controlDataExperiment.objectCompound.name":null,"controlDataExperiment.objectCompound.unii":null,"controlDataExperiment.objectCompound.inChIKey":null,"controlDataExperiment.objectCompound.publicDescription":null,"controlDataExperiment.objectCompound.internalComment":null,"controlDataExperiment.objectCompound.conceptId":null,"controlDataExperiment.objectCompound.enantiomerOfId":null,"controlDataExperiment.precipitantCompound.id":null,"controlDataExperiment.precipitantCompound.name":null,"controlDataExperiment.precipitantCompound.unii":null,"controlDataExperiment.precipitantCompound.inChIKey":null,"controlDataExperiment.precipitantCompound.publicDescription":null,"controlDataExperiment.precipitantCompound.internalComment":null,"controlDataExperiment.precipitantCompound.conceptId":null,"controlDataExperiment.precipitantCompound.enantiomerOfId":null,"controlDataExperiment.objectMetaboliteCompound.id":null,"controlDataExperiment.objectMetaboliteCompound.name":null,"controlDataExperiment.objectMetaboliteCompound.unii":null,"controlDataExperiment.objectMetaboliteCompound.inChIKey":null,"controlDataExperiment.objectMetaboliteCompound.publicDescriptio":null,"controlDataExperiment.objectMetaboliteCompound.internalComment":null,"controlDataExperiment.objectMetaboliteCompound.conceptId":null,"controlDataExperiment.objectMetaboliteCompound.enantiomerOfId":null,"controlDataExperiment.enzymes.id":null,"controlDataExperiment.enzymes.name":null,"controlDataExperiment.enzymes.conceptId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.enzymeId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.experiment":null,"controlDataExperiment.transporters.id":null,"controlDataExperiment.transporters.name":null,"controlDataExperiment.transporters.conceptId":null,"controlDataExperiment.transporters.experiment_transporter_xref.":null,"controlDataExperiment.quantifiedMetabolites.id":null,"controlDataExperiment.quantifiedMetabolites.name":null,"controlDataExperiment.quantifiedMetabolites.unii":null,"controlDataExperiment.quantifiedMetabolites.inChIKey":null,"controlDataExperiment.quantifiedMetabolites.publicDescription":null,"controlDataExperiment.quantifiedMetabolites.internalComment":null,"controlDataExperiment.quantifiedMetabolites.conceptId":null,"controlDataExperiment.quantifiedMetabolites.enantiomerOfId":null,"controlDataExperiment.quantifiedMetabolites.experiment_quantifi":null,"experimentAnswers.id":7055,"experimentAnswers.text":null,"experimentAnswers.answerId":707,"experimentAnswers.experimentId":297,"experimentAnswers.questionId":128,"experimentAnswers.question.id":128,"experimentAnswers.question.text":"Adverse event classes","experimentAnswers.question.required":false,"experimentAnswers.question.maxAnswers":100,"experimentAnswers.question.type":null,"experimentAnswers.question.conceptId":null,"experimentAnswers.question.answers.id":710,"experimentAnswers.question.answers.text":"Infections and infestations","experimentAnswers.question.answers.sortOrder":null,"experimentAnswers.question.answers.conceptId":36100000,"experimentAnswers.question.answers.questionId":128,"experimentAnswers.answer.id":707,"experimentAnswers.answer.text":"General disorders and administration site conditions","experimentAnswers.answer.sortOrder":null,"experimentAnswers.answer.conceptId":35800000,"experimentAnswers.answer.questionId":128},{"id":297,"uid":"NPDI-Bi2fGw","name":"CYP3A4 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Interaction","experimentType.isInVitro":false,"experimentType.isTransporter":false,"experimentType.isEnzyme":false,"experimentType.purl":"http://purl.obolibrary.org/obo/DIDEO_00000071","objectCompound.id":26,"objectCompound.name":"midazolam","objectCompound.unii":"R60L0SM5BC","objectCompound.inChIKey":"DDLIGBOFAVUZHB-UHFFFAOYSA-N","objectCompound.publicDescription":null,"objectCompound.internalComment":null,"objectCompound.conceptId":708298,"objectCompound.enantiomerOfId":null,"objectCompound.concept.conceptId":708298,"objectCompound.concept.conceptName":"Midazolam","objectCompound.concept.domainId":"Drug","objectCompound.concept.vocabularyId":"RxNorm","objectCompound.concept.conceptClassId":"Ingredient","objectCompound.concept.standardConcept":"S","objectCompound.concept.conceptCode":"6960","objectCompound.concept.validStartDate":"1970-01-01T00:00:00.000Z","objectCompound.concept.validEndDate":"2099-12-31T00:00:00.000Z","objectCompound.concept.invalid_reason":null,"precipitantCompound.id":127,"precipitantCompound.name":"goldenseal root 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis 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event classes","experimentAnswers.question.required":false,"experimentAnswers.question.maxAnswers":100,"experimentAnswers.question.type":null,"experimentAnswers.question.conceptId":null,"experimentAnswers.question.answers.id":711,"experimentAnswers.question.answers.text":"Injury, poisoning and procedural complications","experimentAnswers.question.answers.sortOrder":null,"experimentAnswers.question.answers.conceptId":36200000,"experimentAnswers.question.answers.questionId":128,"experimentAnswers.answer.id":707,"experimentAnswers.answer.text":"General disorders and administration site conditions","experimentAnswers.answer.sortOrder":null,"experimentAnswers.answer.conceptId":35800000,"experimentAnswers.answer.questionId":128},{"id":297,"uid":"NPDI-Bi2fGw","name":"CYP3A4 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis canadensis","study.naturalProduct.name":"Goldenseal","study.naturalProduct.itis":null,"study.naturalProduct.srs":"66690655-f406-4d67-96e3-2066aafee8d5","study.naturalProduct.source_id":"","study.naturalProduct.conceptId":null,"study.naturalProduct.concept.conceptId":null,"study.naturalProduct.concept.conceptName":null,"study.naturalProduct.concept.domainId":null,"study.naturalProduct.concept.vocabularyId":null,"study.naturalProduct.concept.conceptClassId":null,"study.naturalProduct.concept.standardConcept":null,"study.naturalProduct.concept.conceptCode":null,"study.naturalProduct.concept.validStartDate":null,"study.naturalProduct.concept.validEndDate":null,"study.naturalProduct.concept.invalid_reason":null,"study.compound.id":null,"study.compound.name":null,"study.compound.unii":null,"study.compound.inChIKey":null,"study.compound.publicDescription":null,"study.compound.internalComment":null,"study.compound.conceptId":null,"study.compound.enantiomerOfId":null,"study.studySourceType.id":1,"study.studySourceType.name":"Published report","testSystem.id":null,"testSystem.name":null,"testSystem.sortOrder":null,"testSystem.conceptId":null,"testSystem.categoryId":null,"testSystem.category.id":null,"testSystem.category.name":null,"testSystem.category.sortOrder":null,"testSystem.category.requiresCytochromeB5":null,"cytochromeB5.id":null,"cytochromeB5.name":null,"cytochromeB5.sortOrder":null,"cytochromeB5.conceptId":null,"controlDataExperiment.id":null,"controlDataExperiment.uid":null,"controlDataExperiment.name":null,"controlDataExperiment.overallEffect":null,"controlDataExperiment.isControlData":null,"controlDataExperiment.isIc50Shift":null,"controlDataExperiment.croCutoff":null,"controlDataExperiment.croIdentifier":null,"controlDataExperiment.comment":null,"controlDataExperiment.experimentalConditionsComment":null,"controlDataExperiment.resultsComment":null,"controlDataExperiment.internalComment":null,"controlDataExperiment.objectCompoundId":null,"controlDataExperiment.objectMetaboliteCompoundId":null,"controlDataExperiment.precipitantCompoundId":null,"controlDataExperiment.cytochromeB5Id":null,"controlDataExperiment.studyId":null,"controlDataExperiment.experimentTypeId":null,"controlDataExperiment.testSystemId":null,"controlDataExperiment.ic50ShiftExperimentId":null,"controlDataExperiment.controlDataExperimentId":null,"controlDataExperiment.controlDataForExperimentId":null,"controlDataExperiment.naturalProductSampleId":null,"controlDataExperiment.experimentType.id":null,"controlDataExperiment.experimentType.name":null,"controlDataExperiment.experimentType.isInVitro":null,"controlDataExperiment.experimentType.isTransporter":null,"controlDataExperiment.experimentType.isEnzyme":null,"controlDataExperiment.experimentType.purl":null,"controlDataExperiment.objectCompound.id":null,"controlDataExperiment.objectCompound.name":null,"controlDataExperiment.objectCompound.unii":null,"controlDataExperiment.objectCompound.inChIKey":null,"controlDataExperiment.objectCompound.publicDescription":null,"controlDataExperiment.objectCompound.internalComment":null,"controlDataExperiment.objectCompound.conceptId":null,"controlDataExperiment.objectCompound.enantiomerOfId":null,"controlDataExperiment.precipitantCompound.id":null,"controlDataExperiment.precipitantCompound.name":null,"controlDataExperiment.precipitantCompound.unii":null,"controlDataExperiment.precipitantCompound.inChIKey":null,"controlDataExperiment.precipitantCompound.publicDescription":null,"controlDataExperiment.precipitantCompound.internalComment":null,"controlDataExperiment.precipitantCompound.conceptId":null,"controlDataExperiment.precipitantCompound.enantiomerOfId":null,"controlDataExperiment.objectMetaboliteCompound.id":null,"controlDataExperiment.objectMetaboliteCompound.name":null,"controlDataExperiment.objectMetaboliteCompound.unii":null,"controlDataExperiment.objectMetaboliteCompound.inChIKey":null,"controlDataExperiment.objectMetaboliteCompound.publicDescriptio":null,"controlDataExperiment.objectMetaboliteCompound.internalComment":null,"controlDataExperiment.objectMetaboliteCompound.conceptId":null,"controlDataExperiment.objectMetaboliteCompound.enantiomerOfId":null,"controlDataExperiment.enzymes.id":null,"controlDataExperiment.enzymes.name":null,"controlDataExperiment.enzymes.conceptId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.enzymeId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.experiment":null,"controlDataExperiment.transporters.id":null,"controlDataExperiment.transporters.name":null,"controlDataExperiment.transporters.conceptId":null,"controlDataExperiment.transporters.experiment_transporter_xref.":null,"controlDataExperiment.quantifiedMetabolites.id":null,"controlDataExperiment.quantifiedMetabolites.name":null,"controlDataExperiment.quantifiedMetabolites.unii":null,"controlDataExperiment.quantifiedMetabolites.inChIKey":null,"controlDataExperiment.quantifiedMetabolites.publicDescription":null,"controlDataExperiment.quantifiedMetabolites.internalComment":null,"controlDataExperiment.quantifiedMetabolites.conceptId":null,"controlDataExperiment.quantifiedMetabolites.enantiomerOfId":null,"controlDataExperiment.quantifiedMetabolites.experiment_quantifi":null,"experimentAnswers.id":7055,"experimentAnswers.text":null,"experimentAnswers.answerId":707,"experimentAnswers.experimentId":297,"experimentAnswers.questionId":128,"experimentAnswers.question.id":128,"experimentAnswers.question.text":"Adverse event classes","experimentAnswers.question.required":false,"experimentAnswers.question.maxAnswers":100,"experimentAnswers.question.type":null,"experimentAnswers.question.conceptId":null,"experimentAnswers.question.answers.id":712,"experimentAnswers.question.answers.text":"Investigations","experimentAnswers.question.answers.sortOrder":null,"experimentAnswers.question.answers.conceptId":36300000,"experimentAnswers.question.answers.questionId":128,"experimentAnswers.answer.id":707,"experimentAnswers.answer.text":"General disorders and administration site conditions","experimentAnswers.answer.sortOrder":null,"experimentAnswers.answer.conceptId":35800000,"experimentAnswers.answer.questionId":128},{"id":297,"uid":"NPDI-Bi2fGw","name":"CYP3A4 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Interaction","experimentType.isInVitro":false,"experimentType.isTransporter":false,"experimentType.isEnzyme":false,"experimentType.purl":"http://purl.obolibrary.org/obo/DIDEO_00000071","objectCompound.id":26,"objectCompound.name":"midazolam","objectCompound.unii":"R60L0SM5BC","objectCompound.inChIKey":"DDLIGBOFAVUZHB-UHFFFAOYSA-N","objectCompound.publicDescription":null,"objectCompound.internalComment":null,"objectCompound.conceptId":708298,"objectCompound.enantiomerOfId":null,"objectCompound.concept.conceptId":708298,"objectCompound.concept.conceptName":"Midazolam","objectCompound.concept.domainId":"Drug","objectCompound.concept.vocabularyId":"RxNorm","objectCompound.concept.conceptClassId":"Ingredient","objectCompound.concept.standardConcept":"S","objectCompound.concept.conceptCode":"6960","objectCompound.concept.validStartDate":"1970-01-01T00:00:00.000Z","objectCompound.concept.validEndDate":"2099-12-31T00:00:00.000Z","objectCompound.concept.invalid_reason":null,"precipitantCompound.id":127,"precipitantCompound.name":"goldenseal 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis canadensis","study.naturalProduct.name":"Goldenseal","study.naturalProduct.itis":null,"study.naturalProduct.srs":"66690655-f406-4d67-96e3-2066aafee8d5","study.naturalProduct.source_id":"","study.naturalProduct.conceptId":null,"study.naturalProduct.concept.conceptId":null,"study.naturalProduct.concept.conceptName":null,"study.naturalProduct.concept.domainId":null,"study.naturalProduct.concept.vocabularyId":null,"study.naturalProduct.concept.conceptClassId":null,"study.naturalProduct.concept.standardConcept":null,"study.naturalProduct.concept.conceptCode":null,"study.naturalProduct.concept.validStartDate":null,"study.naturalProduct.concept.validEndDate":null,"study.naturalProduct.concept.invalid_reason":null,"study.compound.id":null,"study.compound.name":null,"study.compound.unii":null,"study.compound.inChIKey":null,"study.compound.publicDescription":null,"study.compound.internalComment":null,"study.compound.conceptId":null,"study.compound.enantiomerOfId":null,"study.studySourceType.id":1,"study.studySourceType.name":"Published report","testSystem.id":null,"testSystem.name":null,"testSystem.sortOrder":null,"testSystem.conceptId":null,"testSystem.categoryId":null,"testSystem.category.id":null,"testSystem.category.name":null,"testSystem.category.sortOrder":null,"testSystem.category.requiresCytochromeB5":null,"cytochromeB5.id":null,"cytochromeB5.name":null,"cytochromeB5.sortOrder":null,"cytochromeB5.conceptId":null,"controlDataExperiment.id":null,"controlDataExperiment.uid":null,"controlDataExperiment.name":null,"controlDataExperiment.overallEffect":null,"controlDataExperiment.isControlData":null,"controlDataExperiment.isIc50Shift":null,"controlDataExperiment.croCutoff":null,"controlDataExperiment.croIdentifier":null,"controlDataExperiment.comment":null,"controlDataExperiment.experimentalConditionsComment":null,"controlDataExperiment.resultsComment":null,"controlDataExperiment.internalComment":null,"controlDataExperiment.objectCompoundId":null,"controlDataExperiment.objectMetaboliteCompoundId":null,"controlDataExperiment.precipitantCompoundId":null,"controlDataExperiment.cytochromeB5Id":null,"controlDataExperiment.studyId":null,"controlDataExperiment.experimentTypeId":null,"controlDataExperiment.testSystemId":null,"controlDataExperiment.ic50ShiftExperimentId":null,"controlDataExperiment.controlDataExperimentId":null,"controlDataExperiment.controlDataForExperimentId":null,"controlDataExperiment.naturalProductSampleId":null,"controlDataExperiment.experimentType.id":null,"controlDataExperiment.experimentType.name":null,"controlDataExperiment.experimentType.isInVitro":null,"controlDataExperiment.experimentType.isTransporter":null,"controlDataExperiment.experimentType.isEnzyme":null,"controlDataExperiment.experimentType.purl":null,"controlDataExperiment.objectCompound.id":null,"controlDataExperiment.objectCompound.name":null,"controlDataExperiment.objectCompound.unii":null,"controlDataExperiment.objectCompound.inChIKey":null,"controlDataExperiment.objectCompound.publicDescription":null,"controlDataExperiment.objectCompound.internalComment":null,"controlDataExperiment.objectCompound.conceptId":null,"controlDataExperiment.objectCompound.enantiomerOfId":null,"controlDataExperiment.precipitantCompound.id":null,"controlDataExperiment.precipitantCompound.name":null,"controlDataExperiment.precipitantCompound.unii":null,"controlDataExperiment.precipitantCompound.inChIKey":null,"controlDataExperiment.precipitantCompound.publicDescription":null,"controlDataExperiment.precipitantCompound.internalComment":null,"controlDataExperiment.precipitantCompound.conceptId":null,"controlDataExperiment.precipitantCompound.enantiomerOfId":null,"controlDataExperiment.objectMetaboliteCompound.id":null,"controlDataExperiment.objectMetaboliteCompound.name":null,"controlDataExperiment.objectMetaboliteCompound.unii":null,"controlDataExperiment.objectMetaboliteCompound.inChIKey":null,"controlDataExperiment.objectMetaboliteCompound.publicDescriptio":null,"controlDataExperiment.objectMetaboliteCompound.internalComment":null,"controlDataExperiment.objectMetaboliteCompound.conceptId":null,"controlDataExperiment.objectMetaboliteCompound.enantiomerOfId":null,"controlDataExperiment.enzymes.id":null,"controlDataExperiment.enzymes.name":null,"controlDataExperiment.enzymes.conceptId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.enzymeId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.experiment":null,"controlDataExperiment.transporters.id":null,"controlDataExperiment.transporters.name":null,"controlDataExperiment.transporters.conceptId":null,"controlDataExperiment.transporters.experiment_transporter_xref.":null,"controlDataExperiment.quantifiedMetabolites.id":null,"controlDataExperiment.quantifiedMetabolites.name":null,"controlDataExperiment.quantifiedMetabolites.unii":null,"controlDataExperiment.quantifiedMetabolites.inChIKey":null,"controlDataExperiment.quantifiedMetabolites.publicDescription":null,"controlDataExperiment.quantifiedMetabolites.internalComment":null,"controlDataExperiment.quantifiedMetabolites.conceptId":null,"controlDataExperiment.quantifiedMetabolites.enantiomerOfId":null,"controlDataExperiment.quantifiedMetabolites.experiment_quantifi":null,"experimentAnswers.id":7055,"experimentAnswers.text":null,"experimentAnswers.answerId":707,"experimentAnswers.experimentId":297,"experimentAnswers.questionId":128,"experimentAnswers.question.id":128,"experimentAnswers.question.text":"Adverse event classes","experimentAnswers.question.required":false,"experimentAnswers.question.maxAnswers":100,"experimentAnswers.question.type":null,"experimentAnswers.question.conceptId":null,"experimentAnswers.question.answers.id":714,"experimentAnswers.question.answers.text":"Musculoskeletal and connective tissue disorders","experimentAnswers.question.answers.sortOrder":null,"experimentAnswers.question.answers.conceptId":36500000,"experimentAnswers.question.answers.questionId":128,"experimentAnswers.answer.id":707,"experimentAnswers.answer.text":"General disorders and administration site conditions","experimentAnswers.answer.sortOrder":null,"experimentAnswers.answer.conceptId":35800000,"experimentAnswers.answer.questionId":128},{"id":297,"uid":"NPDI-Bi2fGw","name":"CYP3A4 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Interaction","experimentType.isInVitro":false,"experimentType.isTransporter":false,"experimentType.isEnzyme":false,"experimentType.purl":"http://purl.obolibrary.org/obo/DIDEO_00000071","objectCompound.id":26,"objectCompound.name":"midazolam","objectCompound.unii":"R60L0SM5BC","objectCompound.inChIKey":"DDLIGBOFAVUZHB-UHFFFAOYSA-N","objectCompound.publicDescription":null,"objectCompound.internalComment":null,"objectCompound.conceptId":708298,"objectCompound.enantiomerOfId":null,"objectCompound.concept.conceptId":708298,"objectCompound.concept.conceptName":"Midazolam","objectCompound.concept.domainId":"Drug","objectCompound.concept.vocabularyId":"RxNorm","objectCompound.concept.conceptClassId":"Ingredient","objectCompound.concept.standardConcept":"S","objectCompound.concept.conceptCode":"6960","objectCompound.concept.validStartDate":"1970-01-01T00:00:00.000Z","objectCompound.concept.validEndDate":"2099-12-31T00:00:00.000Z","objectCompound.concept.invalid_reason":null,"precipitantCompound.id":127,"precipitantCompound.name":"goldenseal 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis 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Interaction","experimentType.isInVitro":false,"experimentType.isTransporter":false,"experimentType.isEnzyme":false,"experimentType.purl":"http://purl.obolibrary.org/obo/DIDEO_00000071","objectCompound.id":26,"objectCompound.name":"midazolam","objectCompound.unii":"R60L0SM5BC","objectCompound.inChIKey":"DDLIGBOFAVUZHB-UHFFFAOYSA-N","objectCompound.publicDescription":null,"objectCompound.internalComment":null,"objectCompound.conceptId":708298,"objectCompound.enantiomerOfId":null,"objectCompound.concept.conceptId":708298,"objectCompound.concept.conceptName":"Midazolam","objectCompound.concept.domainId":"Drug","objectCompound.concept.vocabularyId":"RxNorm","objectCompound.concept.conceptClassId":"Ingredient","objectCompound.concept.standardConcept":"S","objectCompound.concept.conceptCode":"6960","objectCompound.concept.validStartDate":"1970-01-01T00:00:00.000Z","objectCompound.concept.validEndDate":"2099-12-31T00:00:00.000Z","objectCompound.concept.invalid_reason":null,"precipitantCompound.id":127,"precipitantCompound.name":"goldenseal 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis 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report","testSystem.id":null,"testSystem.name":null,"testSystem.sortOrder":null,"testSystem.conceptId":null,"testSystem.categoryId":null,"testSystem.category.id":null,"testSystem.category.name":null,"testSystem.category.sortOrder":null,"testSystem.category.requiresCytochromeB5":null,"cytochromeB5.id":null,"cytochromeB5.name":null,"cytochromeB5.sortOrder":null,"cytochromeB5.conceptId":null,"controlDataExperiment.id":null,"controlDataExperiment.uid":null,"controlDataExperiment.name":null,"controlDataExperiment.overallEffect":null,"controlDataExperiment.isControlData":null,"controlDataExperiment.isIc50Shift":null,"controlDataExperiment.croCutoff":null,"controlDataExperiment.croIdentifier":null,"controlDataExperiment.comment":null,"controlDataExperiment.experimentalConditionsComment":null,"controlDataExperiment.resultsComment":null,"controlDataExperiment.internalComment":null,"controlDataExperiment.objectCompoundId":null,"controlDataExperiment.objectMetaboliteCompoundId":null,"controlDataExperiment.precipitantCompoundId":null,"controlDataExperiment.cytochromeB5Id":null,"controlDataExperiment.studyId":null,"controlDataExperiment.experimentTypeId":null,"controlDataExperiment.testSystemId":null,"controlDataExperiment.ic50ShiftExperimentId":null,"controlDataExperiment.controlDataExperimentId":null,"controlDataExperiment.controlDataForExperimentId":null,"controlDataExperiment.naturalProductSampleId":null,"controlDataExperiment.experimentType.id":null,"controlDataExperiment.experimentType.name":null,"controlDataExperiment.experimentType.isInVitro":null,"controlDataExperiment.experimentType.isTransporter":null,"controlDataExperiment.experimentType.isEnzyme":null,"controlDataExperiment.experimentType.purl":null,"controlDataExperiment.objectCompound.id":null,"controlDataExperiment.objectCompound.name":null,"controlDataExperiment.objectCompound.unii":null,"controlDataExperiment.objectCompound.inChIKey":null,"controlDataExperiment.objectCompound.publicDescription":null,"controlDataExperiment.objectCompound.internalComment":null,"controlDataExperiment.objectCompound.conceptId":null,"controlDataExperiment.objectCompound.enantiomerOfId":null,"controlDataExperiment.precipitantCompound.id":null,"controlDataExperiment.precipitantCompound.name":null,"controlDataExperiment.precipitantCompound.unii":null,"controlDataExperiment.precipitantCompound.inChIKey":null,"controlDataExperiment.precipitantCompound.publicDescription":null,"controlDataExperiment.precipitantCompound.internalComment":null,"controlDataExperiment.precipitantCompound.conceptId":null,"controlDataExperiment.precipitantCompound.enantiomerOfId":null,"controlDataExperiment.objectMetaboliteCompound.id":null,"controlDataExperiment.objectMetaboliteCompound.name":null,"controlDataExperiment.objectMetaboliteCompound.unii":null,"controlDataExperiment.objectMetaboliteCompound.inChIKey":null,"controlDataExperiment.objectMetaboliteCompound.publicDescriptio":null,"controlDataExperiment.objectMetaboliteCompound.internalComment":null,"controlDataExperiment.objectMetaboliteCompound.conceptId":null,"controlDataExperiment.objectMetaboliteCompound.enantiomerOfId":null,"controlDataExperiment.enzymes.id":null,"controlDataExperiment.enzymes.name":null,"controlDataExperiment.enzymes.conceptId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.enzymeId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.experiment":null,"controlDataExperiment.transporters.id":null,"controlDataExperiment.transporters.name":null,"controlDataExperiment.transporters.conceptId":null,"controlDataExperiment.transporters.experiment_transporter_xref.":null,"controlDataExperiment.quantifiedMetabolites.id":null,"controlDataExperiment.quantifiedMetabolites.name":null,"controlDataExperiment.quantifiedMetabolites.unii":null,"controlDataExperiment.quantifiedMetabolites.inChIKey":null,"controlDataExperiment.quantifiedMetabolites.publicDescription":null,"controlDataExperiment.quantifiedMetabolites.internalComment":null,"controlDataExperiment.quantifiedMetabolites.conceptId":null,"controlDataExperiment.quantifiedMetabolites.enantiomerOfId":null,"controlDataExperiment.quantifiedMetabolites.experiment_quantifi":null,"experimentAnswers.id":7055,"experimentAnswers.text":null,"experimentAnswers.answerId":707,"experimentAnswers.experimentId":297,"experimentAnswers.questionId":128,"experimentAnswers.question.id":128,"experimentAnswers.question.text":"Adverse event classes","experimentAnswers.question.required":false,"experimentAnswers.question.maxAnswers":100,"experimentAnswers.question.type":null,"experimentAnswers.question.conceptId":null,"experimentAnswers.question.answers.id":716,"experimentAnswers.question.answers.text":"Nervous system disorders","experimentAnswers.question.answers.sortOrder":null,"experimentAnswers.question.answers.conceptId":36700000,"experimentAnswers.question.answers.questionId":128,"experimentAnswers.answer.id":707,"experimentAnswers.answer.text":"General disorders and administration site conditions","experimentAnswers.answer.sortOrder":null,"experimentAnswers.answer.conceptId":35800000,"experimentAnswers.answer.questionId":128},{"id":297,"uid":"NPDI-Bi2fGw","name":"CYP3A4 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis 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event classes","experimentAnswers.question.required":false,"experimentAnswers.question.maxAnswers":100,"experimentAnswers.question.type":null,"experimentAnswers.question.conceptId":null,"experimentAnswers.question.answers.id":717,"experimentAnswers.question.answers.text":"Pregnancy, puerperium and perinatal conditions","experimentAnswers.question.answers.sortOrder":null,"experimentAnswers.question.answers.conceptId":36800000,"experimentAnswers.question.answers.questionId":128,"experimentAnswers.answer.id":707,"experimentAnswers.answer.text":"General disorders and administration site conditions","experimentAnswers.answer.sortOrder":null,"experimentAnswers.answer.conceptId":35800000,"experimentAnswers.answer.questionId":128},{"id":297,"uid":"NPDI-Bi2fGw","name":"CYP3A4 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Interaction","experimentType.isInVitro":false,"experimentType.isTransporter":false,"experimentType.isEnzyme":false,"experimentType.purl":"http://purl.obolibrary.org/obo/DIDEO_00000071","objectCompound.id":26,"objectCompound.name":"midazolam","objectCompound.unii":"R60L0SM5BC","objectCompound.inChIKey":"DDLIGBOFAVUZHB-UHFFFAOYSA-N","objectCompound.publicDescription":null,"objectCompound.internalComment":null,"objectCompound.conceptId":708298,"objectCompound.enantiomerOfId":null,"objectCompound.concept.conceptId":708298,"objectCompound.concept.conceptName":"Midazolam","objectCompound.concept.domainId":"Drug","objectCompound.concept.vocabularyId":"RxNorm","objectCompound.concept.conceptClassId":"Ingredient","objectCompound.concept.standardConcept":"S","objectCompound.concept.conceptCode":"6960","objectCompound.concept.validStartDate":"1970-01-01T00:00:00.000Z","objectCompound.concept.validEndDate":"2099-12-31T00:00:00.000Z","objectCompound.concept.invalid_reason":null,"precipitantCompound.id":127,"precipitantCompound.name":"goldenseal root 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis canadensis","study.naturalProduct.name":"Goldenseal","study.naturalProduct.itis":null,"study.naturalProduct.srs":"66690655-f406-4d67-96e3-2066aafee8d5","study.naturalProduct.source_id":"","study.naturalProduct.conceptId":null,"study.naturalProduct.concept.conceptId":null,"study.naturalProduct.concept.conceptName":null,"study.naturalProduct.concept.domainId":null,"study.naturalProduct.concept.vocabularyId":null,"study.naturalProduct.concept.conceptClassId":null,"study.naturalProduct.concept.standardConcept":null,"study.naturalProduct.concept.conceptCode":null,"study.naturalProduct.concept.validStartDate":null,"study.naturalProduct.concept.validEndDate":null,"study.naturalProduct.concept.invalid_reason":null,"study.compound.id":null,"study.compound.name":null,"study.compound.unii":null,"study.compound.inChIKey":null,"study.compound.publicDescription":null,"study.compound.internalComment":null,"study.compound.conceptId":null,"study.compound.enantiomerOfId":null,"study.studySourceType.id":1,"study.studySourceType.name":"Published report","testSystem.id":null,"testSystem.name":null,"testSystem.sortOrder":null,"testSystem.conceptId":null,"testSystem.categoryId":null,"testSystem.category.id":null,"testSystem.category.name":null,"testSystem.category.sortOrder":null,"testSystem.category.requiresCytochromeB5":null,"cytochromeB5.id":null,"cytochromeB5.name":null,"cytochromeB5.sortOrder":null,"cytochromeB5.conceptId":null,"controlDataExperiment.id":null,"controlDataExperiment.uid":null,"controlDataExperiment.name":null,"controlDataExperiment.overallEffect":null,"controlDataExperiment.isControlData":null,"controlDataExperiment.isIc50Shift":null,"controlDataExperiment.croCutoff":null,"controlDataExperiment.croIdentifier":null,"controlDataExperiment.comment":null,"controlDataExperiment.experimentalConditionsComment":null,"controlDataExperiment.resultsComment":null,"controlDataExperiment.internalComment":null,"controlDataExperiment.objectCompoundId":null,"controlDataExperiment.objectMetaboliteCompoundId":null,"controlDataExperiment.precipitantCompoundId":null,"controlDataExperiment.cytochromeB5Id":null,"controlDataExperiment.studyId":null,"controlDataExperiment.experimentTypeId":null,"controlDataExperiment.testSystemId":null,"controlDataExperiment.ic50ShiftExperimentId":null,"controlDataExperiment.controlDataExperimentId":null,"controlDataExperiment.controlDataForExperimentId":null,"controlDataExperiment.naturalProductSampleId":null,"controlDataExperiment.experimentType.id":null,"controlDataExperiment.experimentType.name":null,"controlDataExperiment.experimentType.isInVitro":null,"controlDataExperiment.experimentType.isTransporter":null,"controlDataExperiment.experimentType.isEnzyme":null,"controlDataExperiment.experimentType.purl":null,"controlDataExperiment.objectCompound.id":null,"controlDataExperiment.objectCompound.name":null,"controlDataExperiment.objectCompound.unii":null,"controlDataExperiment.objectCompound.inChIKey":null,"controlDataExperiment.objectCompound.publicDescription":null,"controlDataExperiment.objectCompound.internalComment":null,"controlDataExperiment.objectCompound.conceptId":null,"controlDataExperiment.objectCompound.enantiomerOfId":null,"controlDataExperiment.precipitantCompound.id":null,"controlDataExperiment.precipitantCompound.name":null,"controlDataExperiment.precipitantCompound.unii":null,"controlDataExperiment.precipitantCompound.inChIKey":null,"controlDataExperiment.precipitantCompound.publicDescription":null,"controlDataExperiment.precipitantCompound.internalComment":null,"controlDataExperiment.precipitantCompound.conceptId":null,"controlDataExperiment.precipitantCompound.enantiomerOfId":null,"controlDataExperiment.objectMetaboliteCompound.id":null,"controlDataExperiment.objectMetaboliteCompound.name":null,"controlDataExperiment.objectMetaboliteCompound.unii":null,"controlDataExperiment.objectMetaboliteCompound.inChIKey":null,"controlDataExperiment.objectMetaboliteCompound.publicDescriptio":null,"controlDataExperiment.objectMetaboliteCompound.internalComment":null,"controlDataExperiment.objectMetaboliteCompound.conceptId":null,"controlDataExperiment.objectMetaboliteCompound.enantiomerOfId":null,"controlDataExperiment.enzymes.id":null,"controlDataExperiment.enzymes.name":null,"controlDataExperiment.enzymes.conceptId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.enzymeId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.experiment":null,"controlDataExperiment.transporters.id":null,"controlDataExperiment.transporters.name":null,"controlDataExperiment.transporters.conceptId":null,"controlDataExperiment.transporters.experiment_transporter_xref.":null,"controlDataExperiment.quantifiedMetabolites.id":null,"controlDataExperiment.quantifiedMetabolites.name":null,"controlDataExperiment.quantifiedMetabolites.unii":null,"controlDataExperiment.quantifiedMetabolites.inChIKey":null,"controlDataExperiment.quantifiedMetabolites.publicDescription":null,"controlDataExperiment.quantifiedMetabolites.internalComment":null,"controlDataExperiment.quantifiedMetabolites.conceptId":null,"controlDataExperiment.quantifiedMetabolites.enantiomerOfId":null,"controlDataExperiment.quantifiedMetabolites.experiment_quantifi":null,"experimentAnswers.id":7055,"experimentAnswers.text":null,"experimentAnswers.answerId":707,"experimentAnswers.experimentId":297,"experimentAnswers.questionId":128,"experimentAnswers.question.id":128,"experimentAnswers.question.text":"Adverse 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis canadensis","study.naturalProduct.name":"Goldenseal","study.naturalProduct.itis":null,"study.naturalProduct.srs":"66690655-f406-4d67-96e3-2066aafee8d5","study.naturalProduct.source_id":"","study.naturalProduct.conceptId":null,"study.naturalProduct.concept.conceptId":null,"study.naturalProduct.concept.conceptName":null,"study.naturalProduct.concept.domainId":null,"study.naturalProduct.concept.vocabularyId":null,"study.naturalProduct.concept.conceptClassId":null,"study.naturalProduct.concept.standardConcept":null,"study.naturalProduct.concept.conceptCode":null,"study.naturalProduct.concept.validStartDate":null,"study.naturalProduct.concept.validEndDate":null,"study.naturalProduct.concept.invalid_reason":null,"study.compound.id":null,"study.compound.name":null,"study.compound.unii":null,"study.compound.inChIKey":null,"study.compound.publicDescription":null,"study.compound.internalComment":null,"study.compound.conceptId":null,"study.compound.enantiomerOfId":null,"study.studySourceType.id":1,"study.studySourceType.name":"Published report","testSystem.id":null,"testSystem.name":null,"testSystem.sortOrder":null,"testSystem.conceptId":null,"testSystem.categoryId":null,"testSystem.category.id":null,"testSystem.category.name":null,"testSystem.category.sortOrder":null,"testSystem.category.requiresCytochromeB5":null,"cytochromeB5.id":null,"cytochromeB5.name":null,"cytochromeB5.sortOrder":null,"cytochromeB5.conceptId":null,"controlDataExperiment.id":null,"controlDataExperiment.uid":null,"controlDataExperiment.name":null,"controlDataExperiment.overallEffect":null,"controlDataExperiment.isControlData":null,"controlDataExperiment.isIc50Shift":null,"controlDataExperiment.croCutoff":null,"controlDataExperiment.croIdentifier":null,"controlDataExperiment.comment":null,"controlDataExperiment.experimentalConditionsComment":null,"controlDataExperiment.resultsComment":null,"controlDataExperiment.internalComment":null,"controlDataExperiment.objectCompoundId":null,"controlDataExperiment.objectMetaboliteCompoundId":null,"controlDataExperiment.precipitantCompoundId":null,"controlDataExperiment.cytochromeB5Id":null,"controlDataExperiment.studyId":null,"controlDataExperiment.experimentTypeId":null,"controlDataExperiment.testSystemId":null,"controlDataExperiment.ic50ShiftExperimentId":null,"controlDataExperiment.controlDataExperimentId":null,"controlDataExperiment.controlDataForExperimentId":null,"controlDataExperiment.naturalProductSampleId":null,"controlDataExperiment.experimentType.id":null,"controlDataExperiment.experimentType.name":null,"controlDataExperiment.experimentType.isInVitro":null,"controlDataExperiment.experimentType.isTransporter":null,"controlDataExperiment.experimentType.isEnzyme":null,"controlDataExperiment.experimentType.purl":null,"controlDataExperiment.objectCompound.id":null,"controlDataExperiment.objectCompound.name":null,"controlDataExperiment.objectCompound.unii":null,"controlDataExperiment.objectCompound.inChIKey":null,"controlDataExperiment.objectCompound.publicDescription":null,"controlDataExperiment.objectCompound.internalComment":null,"controlDataExperiment.objectCompound.conceptId":null,"controlDataExperiment.objectCompound.enantiomerOfId":null,"controlDataExperiment.precipitantCompound.id":null,"controlDataExperiment.precipitantCompound.name":null,"controlDataExperiment.precipitantCompound.unii":null,"controlDataExperiment.precipitantCompound.inChIKey":null,"controlDataExperiment.precipitantCompound.publicDescription":null,"controlDataExperiment.precipitantCompound.internalComment":null,"controlDataExperiment.precipitantCompound.conceptId":null,"controlDataExperiment.precipitantCompound.enantiomerOfId":null,"controlDataExperiment.objectMetaboliteCompound.id":null,"controlDataExperiment.objectMetaboliteCompound.name":null,"controlDataExperiment.objectMetaboliteCompound.unii":null,"controlDataExperiment.objectMetaboliteCompound.inChIKey":null,"controlDataExperiment.objectMetaboliteCompound.publicDescriptio":null,"controlDataExperiment.objectMetaboliteCompound.internalComment":null,"controlDataExperiment.objectMetaboliteCompound.conceptId":null,"controlDataExperiment.objectMetaboliteCompound.enantiomerOfId":null,"controlDataExperiment.enzymes.id":null,"controlDataExperiment.enzymes.name":null,"controlDataExperiment.enzymes.conceptId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.enzymeId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.experiment":null,"controlDataExperiment.transporters.id":null,"controlDataExperiment.transporters.name":null,"controlDataExperiment.transporters.conceptId":null,"controlDataExperiment.transporters.experiment_transporter_xref.":null,"controlDataExperiment.quantifiedMetabolites.id":null,"controlDataExperiment.quantifiedMetabolites.name":null,"controlDataExperiment.quantifiedMetabolites.unii":null,"controlDataExperiment.quantifiedMetabolites.inChIKey":null,"controlDataExperiment.quantifiedMetabolites.publicDescription":null,"controlDataExperiment.quantifiedMetabolites.internalComment":null,"controlDataExperiment.quantifiedMetabolites.conceptId":null,"controlDataExperiment.quantifiedMetabolites.enantiomerOfId":null,"controlDataExperiment.quantifiedMetabolites.experiment_quantifi":null,"experimentAnswers.id":7055,"experimentAnswers.text":null,"experimentAnswers.answerId":707,"experimentAnswers.experimentId":297,"experimentAnswers.questionId":128,"experimentAnswers.question.id":128,"experimentAnswers.question.text":"Adverse event classes","experimentAnswers.question.required":false,"experimentAnswers.question.maxAnswers":100,"experimentAnswers.question.type":null,"experimentAnswers.question.conceptId":null,"experimentAnswers.question.answers.id":719,"experimentAnswers.question.answers.text":"Renal and urinary disorders","experimentAnswers.question.answers.sortOrder":null,"experimentAnswers.question.answers.conceptId":37000000,"experimentAnswers.question.answers.questionId":128,"experimentAnswers.answer.id":707,"experimentAnswers.answer.text":"General disorders and administration site conditions","experimentAnswers.answer.sortOrder":null,"experimentAnswers.answer.conceptId":35800000,"experimentAnswers.answer.questionId":128},{"id":297,"uid":"NPDI-Bi2fGw","name":"CYP3A4 Experiment","overallEffect":1,"isControlData":false,"isIc50Shift":false,"croCutoff":null,"croIdentifier":null,"comment":null,"experimentalConditionsComment":null,"resultsComment":null,"internalComment":null,"objectCompoundId":26,"objectMetaboliteCompoundId":null,"precipitantCompoundId":127,"cytochromeB5Id":null,"studyId":73,"experimentTypeId":9,"testSystemId":null,"ic50ShiftExperimentId":null,"controlDataExperimentId":null,"controlDataForExperimentId":null,"naturalProductSampleId":null,"experimentType.id":9,"experimentType.name":"In Vivo Interaction","experimentType.isInVitro":false,"experimentType.isTransporter":false,"experimentType.isEnzyme":false,"experimentType.purl":"http://purl.obolibrary.org/obo/DIDEO_00000071","objectCompound.id":26,"objectCompound.name":"midazolam","objectCompound.unii":"R60L0SM5BC","objectCompound.inChIKey":"DDLIGBOFAVUZHB-UHFFFAOYSA-N","objectCompound.publicDescription":null,"objectCompound.internalComment":null,"objectCompound.conceptId":708298,"objectCompound.enantiomerOfId":null,"objectCompound.concept.conceptId":708298,"objectCompound.concept.conceptName":"Midazolam","objectCompound.concept.domainId":"Drug","objectCompound.concept.vocabularyId":"RxNorm","objectCompound.concept.conceptClassId":"Ingredient","objectCompound.concept.standardConcept":"S","objectCompound.concept.conceptCode":"6960","objectCompound.concept.validStartDate":"1970-01-01T00:00:00.000Z","objectCompound.concept.validEndDate":"2099-12-31T00:00:00.000Z","objectCompound.concept.invalid_reason":null,"precipitantCompound.id":127,"precipitantCompound.name":"goldenseal root extract","precipitantCompound.unii":null,"precipitantCompound.inChIKey":null,"precipitantCompound.publicDescription":null,"precipitantCompound.internalComment":null,"precipitantCompound.conceptId":null,"precipitantCompound.enantiomerOfId":null,"precipitantCompound.concept.conceptId":null,"precipitantCompound.concept.conceptName":null,"precipitantCompound.concept.domainId":null,"precipitantCompound.concept.vocabularyId":null,"precipitantCompound.concept.conceptClassId":null,"precipitantCompound.concept.standardConcept":null,"precipitantCompound.concept.conceptCode":null,"precipitantCompound.concept.validStartDate":null,"precipitantCompound.concept.validEndDate":null,"precipitantCompound.concept.invalid_reason":null,"objectMetaboliteCompound.id":null,"objectMetaboliteCompound.name":null,"objectMetaboliteCompound.unii":null,"objectMetaboliteCompound.inChIKey":null,"objectMetaboliteCompound.publicDescription":null,"objectMetaboliteCompound.internalComment":null,"objectMetaboliteCompound.conceptId":null,"objectMetaboliteCompound.enantiomerOfId":null,"objectMetaboliteCompound.concept.conceptId":null,"objectMetaboliteCompound.concept.conceptName":null,"objectMetaboliteCompound.concept.domainId":null,"objectMetaboliteCompound.concept.vocabularyId":null,"objectMetaboliteCompound.concept.conceptClassId":null,"objectMetaboliteCompound.concept.standardConcept":null,"objectMetaboliteCompound.concept.conceptCode":null,"objectMetaboliteCompound.concept.validStartDate":null,"objectMetaboliteCompound.concept.validEndDate":null,"objectMetaboliteCompound.concept.invalid_reason":null,"enzymes.id":13,"enzymes.name":"CYP3A4","enzymes.conceptId":4306811,"enzymes.experiment_enzyme_xref.enzymeId":13,"enzymes.experiment_enzyme_xref.experimentId":297,"transporters.id":null,"transporters.name":null,"transporters.conceptId":null,"transporters.experiment_transporter_xref.experimentId":null,"transporters.experiment_transporter_xref.transporterId":null,"quantifiedMetabolites.id":null,"quantifiedMetabolites.name":null,"quantifiedMetabolites.unii":null,"quantifiedMetabolites.inChIKey":null,"quantifiedMetabolites.publicDescription":null,"quantifiedMetabolites.internalComment":null,"quantifiedMetabolites.conceptId":null,"quantifiedMetabolites.enantiomerOfId":null,"quantifiedMetabolites.experiment_quantified_metabolite_xref.com":null,"quantifiedMetabolites.experiment_quantified_metabolite_xref.exp":null,"study.id":73,"study.uid":"NPDI-ftEv0g","study.name":"In vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis canadensis","study.naturalProduct.name":"Goldenseal","study.naturalProduct.itis":null,"study.naturalProduct.srs":"66690655-f406-4d67-96e3-2066aafee8d5","study.naturalProduct.source_id":"","study.naturalProduct.conceptId":null,"study.naturalProduct.concept.conceptId":null,"study.naturalProduct.concept.conceptName":null,"study.naturalProduct.concept.domainId":null,"study.naturalProduct.concept.vocabularyId":null,"study.naturalProduct.concept.conceptClassId":null,"study.naturalProduct.concept.standardConcept":null,"study.naturalProduct.concept.conceptCode":null,"study.naturalProduct.concept.validStartDate":null,"study.naturalProduct.concept.validEndDate":null,"study.naturalProduct.concept.invalid_reason":null,"study.compound.id":null,"study.compound.name":null,"study.compound.unii":null,"study.compound.inChIKey":null,"study.compound.publicDescription":null,"study.compound.internalComment":null,"study.compound.conceptId":null,"study.compound.enantiomerOfId":null,"study.studySourceType.id":1,"study.studySourceType.name":"Published report","testSystem.id":null,"testSystem.name":null,"testSystem.sortOrder":null,"testSystem.conceptId":null,"testSystem.categoryId":null,"testSystem.category.id":null,"testSystem.category.name":null,"testSystem.category.sortOrder":null,"testSystem.category.requiresCytochromeB5":null,"cytochromeB5.id":null,"cytochromeB5.name":null,"cytochromeB5.sortOrder":null,"cytochromeB5.conceptId":null,"controlDataExperiment.id":null,"controlDataExperiment.uid":null,"controlDataExperiment.name":null,"controlDataExperiment.overallEffect":null,"controlDataExperiment.isControlData":null,"controlDataExperiment.isIc50Shift":null,"controlDataExperiment.croCutoff":null,"controlDataExperiment.croIdentifier":null,"controlDataExperiment.comment":null,"controlDataExperiment.experimentalConditionsComment":null,"controlDataExperiment.resultsComment":null,"controlDataExperiment.internalComment":null,"controlDataExperiment.objectCompoundId":null,"controlDataExperiment.objectMetaboliteCompoundId":null,"controlDataExperiment.precipitantCompoundId":null,"controlDataExperiment.cytochromeB5Id":null,"controlDataExperiment.studyId":null,"controlDataExperiment.experimentTypeId":null,"controlDataExperiment.testSystemId":null,"controlDataExperiment.ic50ShiftExperimentId":null,"controlDataExperiment.controlDataExperimentId":null,"controlDataExperiment.controlDataForExperimentId":null,"controlDataExperiment.naturalProductSampleId":null,"controlDataExperiment.experimentType.id":null,"controlDataExperiment.experimentType.name":null,"controlDataExperiment.experimentType.isInVitro":null,"controlDataExperiment.experimentType.isTransporter":null,"controlDataExperiment.experimentType.isEnzyme":null,"controlDataExperiment.experimentType.purl":null,"controlDataExperiment.objectCompound.id":null,"controlDataExperiment.objectCompound.name":null,"controlDataExperiment.objectCompound.unii":null,"controlDataExperiment.objectCompound.inChIKey":null,"controlDataExperiment.objectCompound.publicDescription":null,"controlDataExperiment.objectCompound.internalComment":null,"controlDataExperiment.objectCompound.conceptId":null,"controlDataExperiment.objectCompound.enantiomerOfId":null,"controlDataExperiment.precipitantCompound.id":null,"controlDataExperiment.precipitantCompound.name":null,"controlDataExperiment.precipitantCompound.unii":null,"controlDataExperiment.precipitantCompound.inChIKey":null,"controlDataExperiment.precipitantCompound.publicDescription":null,"controlDataExperiment.precipitantCompound.internalComment":null,"controlDataExperiment.precipitantCompound.conceptId":null,"controlDataExperiment.precipitantCompound.enantiomerOfId":null,"controlDataExperiment.objectMetaboliteCompound.id":null,"controlDataExperiment.objectMetaboliteCompound.name":null,"controlDataExperiment.objectMetaboliteCompound.unii":null,"controlDataExperiment.objectMetaboliteCompound.inChIKey":null,"controlDataExperiment.objectMetaboliteCompound.publicDescriptio":null,"controlDataExperiment.objectMetaboliteCompound.internalComment":null,"controlDataExperiment.objectMetaboliteCompound.conceptId":null,"controlDataExperiment.objectMetaboliteCompound.enantiomerOfId":null,"controlDataExperiment.enzymes.id":null,"controlDataExperiment.enzymes.name":null,"controlDataExperiment.enzymes.conceptId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.enzymeId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.experiment":null,"controlDataExperiment.transporters.id":null,"controlDataExperiment.transporters.name":null,"controlDataExperiment.transporters.conceptId":null,"controlDataExperiment.transporters.experiment_transporter_xref.":null,"controlDataExperiment.quantifiedMetabolites.id":null,"controlDataExperiment.quantifiedMetabolites.name":null,"controlDataExperiment.quantifiedMetabolites.unii":null,"controlDataExperiment.quantifiedMetabolites.inChIKey":null,"controlDataExperiment.quantifiedMetabolites.publicDescription":null,"controlDataExperiment.quantifiedMetabolites.internalComment":null,"controlDataExperiment.quantifiedMetabolites.conceptId":null,"controlDataExperiment.quantifiedMetabolites.enantiomerOfId":null,"controlDataExperiment.quantifiedMetabolites.experiment_quantifi":null,"experimentAnswers.id":7055,"experimentAnswers.text":null,"experimentAnswers.answerId":707,"experimentAnswers.experimentId":297,"experimentAnswers.questionId":128,"experimentAnswers.question.id":128,"experimentAnswers.question.text":"Adverse event classes","experimentAnswers.question.required":false,"experimentAnswers.question.maxAnswers":100,"experimentAnswers.question.type":null,"experimentAnswers.question.conceptId":null,"experimentAnswers.question.answers.id":720,"experimentAnswers.question.answers.text":"Reproductive system and breast disorders","experimentAnswers.question.answers.sortOrder":null,"experimentAnswers.question.answers.conceptId":37100000,"experimentAnswers.question.answers.questionId":128,"experimentAnswers.answer.id":707,"experimentAnswers.answer.text":"General disorders and administration site conditions","experimentAnswers.answer.sortOrder":null,"experimentAnswers.answer.conceptId":35800000,"experimentAnswers.answer.questionId":128},{"id":297,"uid":"NPDI-Bi2fGw","name":"CYP3A4 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis canadensis","study.naturalProduct.name":"Goldenseal","study.naturalProduct.itis":null,"study.naturalProduct.srs":"66690655-f406-4d67-96e3-2066aafee8d5","study.naturalProduct.source_id":"","study.naturalProduct.conceptId":null,"study.naturalProduct.concept.conceptId":null,"study.naturalProduct.concept.conceptName":null,"study.naturalProduct.concept.domainId":null,"study.naturalProduct.concept.vocabularyId":null,"study.naturalProduct.concept.conceptClassId":null,"study.naturalProduct.concept.standardConcept":null,"study.naturalProduct.concept.conceptCode":null,"study.naturalProduct.concept.validStartDate":null,"study.naturalProduct.concept.validEndDate":null,"study.naturalProduct.concept.invalid_reason":null,"study.compound.id":null,"study.compound.name":null,"study.compound.unii":null,"study.compound.inChIKey":null,"study.compound.publicDescription":null,"study.compound.internalComment":null,"study.compound.conceptId":null,"study.compound.enantiomerOfId":null,"study.studySourceType.id":1,"study.studySourceType.name":"Published report","testSystem.id":null,"testSystem.name":null,"testSystem.sortOrder":null,"testSystem.conceptId":null,"testSystem.categoryId":null,"testSystem.category.id":null,"testSystem.category.name":null,"testSystem.category.sortOrder":null,"testSystem.category.requiresCytochromeB5":null,"cytochromeB5.id":null,"cytochromeB5.name":null,"cytochromeB5.sortOrder":null,"cytochromeB5.conceptId":null,"controlDataExperiment.id":null,"controlDataExperiment.uid":null,"controlDataExperiment.name":null,"controlDataExperiment.overallEffect":null,"controlDataExperiment.isControlData":null,"controlDataExperiment.isIc50Shift":null,"controlDataExperiment.croCutoff":null,"controlDataExperiment.croIdentifier":null,"controlDataExperiment.comment":null,"controlDataExperiment.experimentalConditionsComment":null,"controlDataExperiment.resultsComment":null,"controlDataExperiment.internalComment":null,"controlDataExperiment.objectCompoundId":null,"controlDataExperiment.objectMetaboliteCompoundId":null,"controlDataExperiment.precipitantCompoundId":null,"controlDataExperiment.cytochromeB5Id":null,"controlDataExperiment.studyId":null,"controlDataExperiment.experimentTypeId":null,"controlDataExperiment.testSystemId":null,"controlDataExperiment.ic50ShiftExperimentId":null,"controlDataExperiment.controlDataExperimentId":null,"controlDataExperiment.controlDataForExperimentId":null,"controlDataExperiment.naturalProductSampleId":null,"controlDataExperiment.experimentType.id":null,"controlDataExperiment.experimentType.name":null,"controlDataExperiment.experimentType.isInVitro":null,"controlDataExperiment.experimentType.isTransporter":null,"controlDataExperiment.experimentType.isEnzyme":null,"controlDataExperiment.experimentType.purl":null,"controlDataExperiment.objectCompound.id":null,"controlDataExperiment.objectCompound.name":null,"controlDataExperiment.objectCompound.unii":null,"controlDataExperiment.objectCompound.inChIKey":null,"controlDataExperiment.objectCompound.publicDescription":null,"controlDataExperiment.objectCompound.internalComment":null,"controlDataExperiment.objectCompound.conceptId":null,"controlDataExperiment.objectCompound.enantiomerOfId":null,"controlDataExperiment.precipitantCompound.id":null,"controlDataExperiment.precipitantCompound.name":null,"controlDataExperiment.precipitantCompound.unii":null,"controlDataExperiment.precipitantCompound.inChIKey":null,"controlDataExperiment.precipitantCompound.publicDescription":null,"controlDataExperiment.precipitantCompound.internalComment":null,"controlDataExperiment.precipitantCompound.conceptId":null,"controlDataExperiment.precipitantCompound.enantiomerOfId":null,"controlDataExperiment.objectMetaboliteCompound.id":null,"controlDataExperiment.objectMetaboliteCompound.name":null,"controlDataExperiment.objectMetaboliteCompound.unii":null,"controlDataExperiment.objectMetaboliteCompound.inChIKey":null,"controlDataExperiment.objectMetaboliteCompound.publicDescriptio":null,"controlDataExperiment.objectMetaboliteCompound.internalComment":null,"controlDataExperiment.objectMetaboliteCompound.conceptId":null,"controlDataExperiment.objectMetaboliteCompound.enantiomerOfId":null,"controlDataExperiment.enzymes.id":null,"controlDataExperiment.enzymes.name":null,"controlDataExperiment.enzymes.conceptId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.enzymeId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.experiment":null,"controlDataExperiment.transporters.id":null,"controlDataExperiment.transporters.name":null,"controlDataExperiment.transporters.conceptId":null,"controlDataExperiment.transporters.experiment_transporter_xref.":null,"controlDataExperiment.quantifiedMetabolites.id":null,"controlDataExperiment.quantifiedMetabolites.name":null,"controlDataExperiment.quantifiedMetabolites.unii":null,"controlDataExperiment.quantifiedMetabolites.inChIKey":null,"controlDataExperiment.quantifiedMetabolites.publicDescription":null,"controlDataExperiment.quantifiedMetabolites.internalComment":null,"controlDataExperiment.quantifiedMetabolites.conceptId":null,"controlDataExperiment.quantifiedMetabolites.enantiomerOfId":null,"controlDataExperiment.quantifiedMetabolites.experiment_quantifi":null,"experimentAnswers.id":7055,"experimentAnswers.text":null,"experimentAnswers.answerId":707,"experimentAnswers.experimentId":297,"experimentAnswers.questionId":128,"experimentAnswers.question.id":128,"experimentAnswers.question.text":"Adverse event classes","experimentAnswers.question.required":false,"experimentAnswers.question.maxAnswers":100,"experimentAnswers.question.type":null,"experimentAnswers.question.conceptId":null,"experimentAnswers.question.answers.id":721,"experimentAnswers.question.answers.text":"Respiratory, thoracic and mediastinal disorders","experimentAnswers.question.answers.sortOrder":null,"experimentAnswers.question.answers.conceptId":37200000,"experimentAnswers.question.answers.questionId":128,"experimentAnswers.answer.id":707,"experimentAnswers.answer.text":"General disorders and administration site conditions","experimentAnswers.answer.sortOrder":null,"experimentAnswers.answer.conceptId":35800000,"experimentAnswers.answer.questionId":128},{"id":297,"uid":"NPDI-Bi2fGw","name":"CYP3A4 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Interaction","experimentType.isInVitro":false,"experimentType.isTransporter":false,"experimentType.isEnzyme":false,"experimentType.purl":"http://purl.obolibrary.org/obo/DIDEO_00000071","objectCompound.id":26,"objectCompound.name":"midazolam","objectCompound.unii":"R60L0SM5BC","objectCompound.inChIKey":"DDLIGBOFAVUZHB-UHFFFAOYSA-N","objectCompound.publicDescription":null,"objectCompound.internalComment":null,"objectCompound.conceptId":708298,"objectCompound.enantiomerOfId":null,"objectCompound.concept.conceptId":708298,"objectCompound.concept.conceptName":"Midazolam","objectCompound.concept.domainId":"Drug","objectCompound.concept.vocabularyId":"RxNorm","objectCompound.concept.conceptClassId":"Ingredient","objectCompound.concept.standardConcept":"S","objectCompound.concept.conceptCode":"6960","objectCompound.concept.validStartDate":"1970-01-01T00:00:00.000Z","objectCompound.concept.validEndDate":"2099-12-31T00:00:00.000Z","objectCompound.concept.invalid_reason":null,"precipitantCompound.id":127,"precipitantCompound.name":"goldenseal root 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis 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event classes","experimentAnswers.question.required":false,"experimentAnswers.question.maxAnswers":100,"experimentAnswers.question.type":null,"experimentAnswers.question.conceptId":null,"experimentAnswers.question.answers.id":722,"experimentAnswers.question.answers.text":"Skin and subcutaneous tissue disorders","experimentAnswers.question.answers.sortOrder":null,"experimentAnswers.question.answers.conceptId":37300000,"experimentAnswers.question.answers.questionId":128,"experimentAnswers.answer.id":707,"experimentAnswers.answer.text":"General disorders and administration site conditions","experimentAnswers.answer.sortOrder":null,"experimentAnswers.answer.conceptId":35800000,"experimentAnswers.answer.questionId":128},{"id":297,"uid":"NPDI-Bi2fGw","name":"CYP3A4 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis canadensis","study.naturalProduct.name":"Goldenseal","study.naturalProduct.itis":null,"study.naturalProduct.srs":"66690655-f406-4d67-96e3-2066aafee8d5","study.naturalProduct.source_id":"","study.naturalProduct.conceptId":null,"study.naturalProduct.concept.conceptId":null,"study.naturalProduct.concept.conceptName":null,"study.naturalProduct.concept.domainId":null,"study.naturalProduct.concept.vocabularyId":null,"study.naturalProduct.concept.conceptClassId":null,"study.naturalProduct.concept.standardConcept":null,"study.naturalProduct.concept.conceptCode":null,"study.naturalProduct.concept.validStartDate":null,"study.naturalProduct.concept.validEndDate":null,"study.naturalProduct.concept.invalid_reason":null,"study.compound.id":null,"study.compound.name":null,"study.compound.unii":null,"study.compound.inChIKey":null,"study.compound.publicDescription":null,"study.compound.internalComment":null,"study.compound.conceptId":null,"study.compound.enantiomerOfId":null,"study.studySourceType.id":1,"study.studySourceType.name":"Published report","testSystem.id":null,"testSystem.name":null,"testSystem.sortOrder":null,"testSystem.conceptId":null,"testSystem.categoryId":null,"testSystem.category.id":null,"testSystem.category.name":null,"testSystem.category.sortOrder":null,"testSystem.category.requiresCytochromeB5":null,"cytochromeB5.id":null,"cytochromeB5.name":null,"cytochromeB5.sortOrder":null,"cytochromeB5.conceptId":null,"controlDataExperiment.id":null,"controlDataExperiment.uid":null,"controlDataExperiment.name":null,"controlDataExperiment.overallEffect":null,"controlDataExperiment.isControlData":null,"controlDataExperiment.isIc50Shift":null,"controlDataExperiment.croCutoff":null,"controlDataExperiment.croIdentifier":null,"controlDataExperiment.comment":null,"controlDataExperiment.experimentalConditionsComment":null,"controlDataExperiment.resultsComment":null,"controlDataExperiment.internalComment":null,"controlDataExperiment.objectCompoundId":null,"controlDataExperiment.objectMetaboliteCompoundId":null,"controlDataExperiment.precipitantCompoundId":null,"controlDataExperiment.cytochromeB5Id":null,"controlDataExperiment.studyId":null,"controlDataExperiment.experimentTypeId":null,"controlDataExperiment.testSystemId":null,"controlDataExperiment.ic50ShiftExperimentId":null,"controlDataExperiment.controlDataExperimentId":null,"controlDataExperiment.controlDataForExperimentId":null,"controlDataExperiment.naturalProductSampleId":null,"controlDataExperiment.experimentType.id":null,"controlDataExperiment.experimentType.name":null,"controlDataExperiment.experimentType.isInVitro":null,"controlDataExperiment.experimentType.isTransporter":null,"controlDataExperiment.experimentType.isEnzyme":null,"controlDataExperiment.experimentType.purl":null,"controlDataExperiment.objectCompound.id":null,"controlDataExperiment.objectCompound.name":null,"controlDataExperiment.objectCompound.unii":null,"controlDataExperiment.objectCompound.inChIKey":null,"controlDataExperiment.objectCompound.publicDescription":null,"controlDataExperiment.objectCompound.internalComment":null,"controlDataExperiment.objectCompound.conceptId":null,"controlDataExperiment.objectCompound.enantiomerOfId":null,"controlDataExperiment.precipitantCompound.id":null,"controlDataExperiment.precipitantCompound.name":null,"controlDataExperiment.precipitantCompound.unii":null,"controlDataExperiment.precipitantCompound.inChIKey":null,"controlDataExperiment.precipitantCompound.publicDescription":null,"controlDataExperiment.precipitantCompound.internalComment":null,"controlDataExperiment.precipitantCompound.conceptId":null,"controlDataExperiment.precipitantCompound.enantiomerOfId":null,"controlDataExperiment.objectMetaboliteCompound.id":null,"controlDataExperiment.objectMetaboliteCompound.name":null,"controlDataExperiment.objectMetaboliteCompound.unii":null,"controlDataExperiment.objectMetaboliteCompound.inChIKey":null,"controlDataExperiment.objectMetaboliteCompound.publicDescriptio":null,"controlDataExperiment.objectMetaboliteCompound.internalComment":null,"controlDataExperiment.objectMetaboliteCompound.conceptId":null,"controlDataExperiment.objectMetaboliteCompound.enantiomerOfId":null,"controlDataExperiment.enzymes.id":null,"controlDataExperiment.enzymes.name":null,"controlDataExperiment.enzymes.conceptId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.enzymeId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.experiment":null,"controlDataExperiment.transporters.id":null,"controlDataExperiment.transporters.name":null,"controlDataExperiment.transporters.conceptId":null,"controlDataExperiment.transporters.experiment_transporter_xref.":null,"controlDataExperiment.quantifiedMetabolites.id":null,"controlDataExperiment.quantifiedMetabolites.name":null,"controlDataExperiment.quantifiedMetabolites.unii":null,"controlDataExperiment.quantifiedMetabolites.inChIKey":null,"controlDataExperiment.quantifiedMetabolites.publicDescription":null,"controlDataExperiment.quantifiedMetabolites.internalComment":null,"controlDataExperiment.quantifiedMetabolites.conceptId":null,"controlDataExperiment.quantifiedMetabolites.enantiomerOfId":null,"controlDataExperiment.quantifiedMetabolites.experiment_quantifi":null,"experimentAnswers.id":7055,"experimentAnswers.text":null,"experimentAnswers.answerId":707,"experimentAnswers.experimentId":297,"experimentAnswers.questionId":128,"experimentAnswers.question.id":128,"experimentAnswers.question.text":"Adverse event classes","experimentAnswers.question.required":false,"experimentAnswers.question.maxAnswers":100,"experimentAnswers.question.type":null,"experimentAnswers.question.conceptId":null,"experimentAnswers.question.answers.id":723,"experimentAnswers.question.answers.text":"Social circumstances","experimentAnswers.question.answers.sortOrder":null,"experimentAnswers.question.answers.conceptId":37400000,"experimentAnswers.question.answers.questionId":128,"experimentAnswers.answer.id":707,"experimentAnswers.answer.text":"General disorders and administration site conditions","experimentAnswers.answer.sortOrder":null,"experimentAnswers.answer.conceptId":35800000,"experimentAnswers.answer.questionId":128},{"id":297,"uid":"NPDI-Bi2fGw","name":"CYP3A4 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Interaction","experimentType.isInVitro":false,"experimentType.isTransporter":false,"experimentType.isEnzyme":false,"experimentType.purl":"http://purl.obolibrary.org/obo/DIDEO_00000071","objectCompound.id":26,"objectCompound.name":"midazolam","objectCompound.unii":"R60L0SM5BC","objectCompound.inChIKey":"DDLIGBOFAVUZHB-UHFFFAOYSA-N","objectCompound.publicDescription":null,"objectCompound.internalComment":null,"objectCompound.conceptId":708298,"objectCompound.enantiomerOfId":null,"objectCompound.concept.conceptId":708298,"objectCompound.concept.conceptName":"Midazolam","objectCompound.concept.domainId":"Drug","objectCompound.concept.vocabularyId":"RxNorm","objectCompound.concept.conceptClassId":"Ingredient","objectCompound.concept.standardConcept":"S","objectCompound.concept.conceptCode":"6960","objectCompound.concept.validStartDate":"1970-01-01T00:00:00.000Z","objectCompound.concept.validEndDate":"2099-12-31T00:00:00.000Z","objectCompound.concept.invalid_reason":null,"precipitantCompound.id":127,"precipitantCompound.name":"goldenseal 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis canadensis","study.naturalProduct.name":"Goldenseal","study.naturalProduct.itis":null,"study.naturalProduct.srs":"66690655-f406-4d67-96e3-2066aafee8d5","study.naturalProduct.source_id":"","study.naturalProduct.conceptId":null,"study.naturalProduct.concept.conceptId":null,"study.naturalProduct.concept.conceptName":null,"study.naturalProduct.concept.domainId":null,"study.naturalProduct.concept.vocabularyId":null,"study.naturalProduct.concept.conceptClassId":null,"study.naturalProduct.concept.standardConcept":null,"study.naturalProduct.concept.conceptCode":null,"study.naturalProduct.concept.validStartDate":null,"study.naturalProduct.concept.validEndDate":null,"study.naturalProduct.concept.invalid_reason":null,"study.compound.id":null,"study.compound.name":null,"study.compound.unii":null,"study.compound.inChIKey":null,"study.compound.publicDescription":null,"study.compound.internalComment":null,"study.compound.conceptId":null,"study.compound.enantiomerOfId":null,"study.studySourceType.id":1,"study.studySourceType.name":"Published report","testSystem.id":null,"testSystem.name":null,"testSystem.sortOrder":null,"testSystem.conceptId":null,"testSystem.categoryId":null,"testSystem.category.id":null,"testSystem.category.name":null,"testSystem.category.sortOrder":null,"testSystem.category.requiresCytochromeB5":null,"cytochromeB5.id":null,"cytochromeB5.name":null,"cytochromeB5.sortOrder":null,"cytochromeB5.conceptId":null,"controlDataExperiment.id":null,"controlDataExperiment.uid":null,"controlDataExperiment.name":null,"controlDataExperiment.overallEffect":null,"controlDataExperiment.isControlData":null,"controlDataExperiment.isIc50Shift":null,"controlDataExperiment.croCutoff":null,"controlDataExperiment.croIdentifier":null,"controlDataExperiment.comment":null,"controlDataExperiment.experimentalConditionsComment":null,"controlDataExperiment.resultsComment":null,"controlDataExperiment.internalComment":null,"controlDataExperiment.objectCompoundId":null,"controlDataExperiment.objectMetaboliteCompoundId":null,"controlDataExperiment.precipitantCompoundId":null,"controlDataExperiment.cytochromeB5Id":null,"controlDataExperiment.studyId":null,"controlDataExperiment.experimentTypeId":null,"controlDataExperiment.testSystemId":null,"controlDataExperiment.ic50ShiftExperimentId":null,"controlDataExperiment.controlDataExperimentId":null,"controlDataExperiment.controlDataForExperimentId":null,"controlDataExperiment.naturalProductSampleId":null,"controlDataExperiment.experimentType.id":null,"controlDataExperiment.experimentType.name":null,"controlDataExperiment.experimentType.isInVitro":null,"controlDataExperiment.experimentType.isTransporter":null,"controlDataExperiment.experimentType.isEnzyme":null,"controlDataExperiment.experimentType.purl":null,"controlDataExperiment.objectCompound.id":null,"controlDataExperiment.objectCompound.name":null,"controlDataExperiment.objectCompound.unii":null,"controlDataExperiment.objectCompound.inChIKey":null,"controlDataExperiment.objectCompound.publicDescription":null,"controlDataExperiment.objectCompound.internalComment":null,"controlDataExperiment.objectCompound.conceptId":null,"controlDataExperiment.objectCompound.enantiomerOfId":null,"controlDataExperiment.precipitantCompound.id":null,"controlDataExperiment.precipitantCompound.name":null,"controlDataExperiment.precipitantCompound.unii":null,"controlDataExperiment.precipitantCompound.inChIKey":null,"controlDataExperiment.precipitantCompound.publicDescription":null,"controlDataExperiment.precipitantCompound.internalComment":null,"controlDataExperiment.precipitantCompound.conceptId":null,"controlDataExperiment.precipitantCompound.enantiomerOfId":null,"controlDataExperiment.objectMetaboliteCompound.id":null,"controlDataExperiment.objectMetaboliteCompound.name":null,"controlDataExperiment.objectMetaboliteCompound.unii":null,"controlDataExperiment.objectMetaboliteCompound.inChIKey":null,"controlDataExperiment.objectMetaboliteCompound.publicDescriptio":null,"controlDataExperiment.objectMetaboliteCompound.internalComment":null,"controlDataExperiment.objectMetaboliteCompound.conceptId":null,"controlDataExperiment.objectMetaboliteCompound.enantiomerOfId":null,"controlDataExperiment.enzymes.id":null,"controlDataExperiment.enzymes.name":null,"controlDataExperiment.enzymes.conceptId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.enzymeId":null,"controlDataExperiment.enzymes.experiment_enzyme_xref.experiment":null,"controlDataExperiment.transporters.id":null,"controlDataExperiment.transporters.name":null,"controlDataExperiment.transporters.conceptId":null,"controlDataExperiment.transporters.experiment_transporter_xref.":null,"controlDataExperiment.quantifiedMetabolites.id":null,"controlDataExperiment.quantifiedMetabolites.name":null,"controlDataExperiment.quantifiedMetabolites.unii":null,"controlDataExperiment.quantifiedMetabolites.inChIKey":null,"controlDataExperiment.quantifiedMetabolites.publicDescription":null,"controlDataExperiment.quantifiedMetabolites.internalComment":null,"controlDataExperiment.quantifiedMetabolites.conceptId":null,"controlDataExperiment.quantifiedMetabolites.enantiomerOfId":null,"controlDataExperiment.quantifiedMetabolites.experiment_quantifi":null,"experimentAnswers.id":7055,"experimentAnswers.text":null,"experimentAnswers.answerId":707,"experimentAnswers.experimentId":297,"experimentAnswers.questionId":128,"experimentAnswers.question.id":128,"experimentAnswers.question.text":"Adverse event classes","experimentAnswers.question.required":false,"experimentAnswers.question.maxAnswers":100,"experimentAnswers.question.type":null,"experimentAnswers.question.conceptId":null,"experimentAnswers.question.answers.id":725,"experimentAnswers.question.answers.text":"Vascular disorder","experimentAnswers.question.answers.sortOrder":null,"experimentAnswers.question.answers.conceptId":37600000,"experimentAnswers.question.answers.questionId":128,"experimentAnswers.answer.id":707,"experimentAnswers.answer.text":"General disorders and administration site conditions","experimentAnswers.answer.sortOrder":null,"experimentAnswers.answer.conceptId":35800000,"experimentAnswers.answer.questionId":128},{"id":297,"uid":"NPDI-Bi2fGw","name":"CYP3A4 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Interaction","experimentType.isInVitro":false,"experimentType.isTransporter":false,"experimentType.isEnzyme":false,"experimentType.purl":"http://purl.obolibrary.org/obo/DIDEO_00000071","objectCompound.id":26,"objectCompound.name":"midazolam","objectCompound.unii":"R60L0SM5BC","objectCompound.inChIKey":"DDLIGBOFAVUZHB-UHFFFAOYSA-N","objectCompound.publicDescription":null,"objectCompound.internalComment":null,"objectCompound.conceptId":708298,"objectCompound.enantiomerOfId":null,"objectCompound.concept.conceptId":708298,"objectCompound.concept.conceptName":"Midazolam","objectCompound.concept.domainId":"Drug","objectCompound.concept.vocabularyId":"RxNorm","objectCompound.concept.conceptClassId":"Ingredient","objectCompound.concept.standardConcept":"S","objectCompound.concept.conceptCode":"6960","objectCompound.concept.validStartDate":"1970-01-01T00:00:00.000Z","objectCompound.concept.validEndDate":"2099-12-31T00:00:00.000Z","objectCompound.concept.invalid_reason":null,"precipitantCompound.id":127,"precipitantCompound.name":"goldenseal 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis 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vivo effects of goldenseal, kava kava, black cohosh, and valerian on human cytochrome P450 1A2, 2D6, 2E1, and 3A4 phenotypes","study.napdiIdentifier":"PMID: 15900287","study.overallSummary":"<div class=\"page\" title=\"Page 1\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Objectives— Phytochemical-mediated modulation of cytochrome P-450 activity may underlie many herb-drug interactions. Single time-point, phenotypic metabolic ratios were used to determine whether long-term supplementation of goldenseal (Hydrastis canadensis), black cohosh (Cimicifuga racemosa), kava kava (Piper methysticum), or valerian (Valeriana officinalis) extracts affected CYP1A2, CYP2D6, CYP2E1, or CYP3A4/5 activity.</p>\r\n<p>Methods— Twelve healthy volunteers (6 females) were randomly assigned to receive goldenseal, black cohosh, kava kava, or valerian for 28 days. For each subject, a 30-day washout period was interposed between each supplementation phase. Probe drug cocktails of midazolam and caffeine, followed 24 hours later by chlorzoxazone and debrisoquine were administered before (baseline) and at the end of supplementation. Pre- and post-supplementation phenotypic trait measurements were determined for CYP3A4/5, CYP1A2, CYP2E1, and CYP2D6 using 1-hydroxymidazolam/midazolam serum ratios (1-hour sample), paraxanthine/caffeine serum ratios (6-hour sample), 6- hydroxychlorzoxazone/chlorzoxazone serum ratios (2-hour sample), and debrisoquine urinary recovery ratios (8-hour collection), respectively. The content of purported “active” phytochemicals was determined for each supplement.</p>\r\n<p>Results— Comparisons of pre- and post-supplementation phenotypic ratio means revealed significant inhibition (~40%) of CYP2D6 (difference = −0.228; 95% CI = −0.268 to −0.188) and CYP3A4/5 (difference = −1.501; 95% CI = −1.840 to −1.163) activity for goldenseal. Kava produced significant reductions (~40%) in CYP2E1 only (difference = −0.192; 95% CI = −0.325 to −0.060). Black cohosh also exhibited statistically significant inhibition of CYP2D6 (difference = −0.046; 95% CI = −0.085 to −0.007), but the magnitude of the effect (~7%) did not appear clinically relevant. No significant changes in phenotypic ratios were observed for valerian.</p>\r\n<div class=\"page\" title=\"Page 2\">\r\n<div class=\"section\">\r\n<div class=\"layoutArea\">\r\n<div class=\"column\">\r\n<p>Conclusions— Botanical supplements containing goldenseal strongly inhibited CYP2D6 and CYP3A4/5 activity in vivo, while kava inhibited CYP2E1 and black cohosh weakly inhibited CYP2D6. Accordingly, serious adverse interactions may result from the concomitant ingestion of goldenseal supplements and drugs that are CYP2D6 and CYP3A4/5 substrates. Kava kava and black cohosh may interact with CYP2E1 and CYP2D6 substrates, respectively. Valerian appears less likely to produce CYP-mediated herb-drug interactions.</p>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>\r\n</div>","study.pubmedId":15900287,"study.embaseId":null,"study.croIdentifier":"University of Arkansas for Medical Sciences,","study.croInformation":"Department of Pharmaceutical Sciences","study.dateStart":null,"study.dateEnd":null,"study.internalComment":null,"study.status":"published","study.compoundId":null,"study.naturalProductUid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProductSampleId":null,"study.studySourceTypeId":1,"study.naturalProduct.uid":"NP-002d7e9a-2baf-47cb-a936-51ba9cbb36a7","study.naturalProduct.binomial":"Hydrastis 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