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1.
Eur J Clin Pharmacol ; 78(6): 975-987, 2022 Jun.
Article in English | MEDLINE | ID: mdl-35238961

ABSTRACT

PURPOSE: To investigate the suitability of microdosed oral omeprazole for predicting CYP2C19 activity in vivo in combination with simultaneous assessment of CYP3A and CYP2D6 activity using both microdosed midazolam and yohimbine. METHODS: An open, fixed-sequence study was carried out in 20 healthy participants. Single microdosed (100 µg) and therapeutic (20 mg) doses of omeprazole were evaluated without comedication and after administration of established CYP2C19 perpetrators fluconazole (inhibition) and rifampicin (induction). To prevent degradation of the uncoated omeprazole microdose, sodium bicarbonate buffer was administered. The pharmacokinetics of omeprazole and its 5-hydroxy-metabolite were assessed as well as the pharmacokinetics of midazolam and yohimbine to estimate CYP3A4 and CYP2D6 activity. RESULTS: Calculated pharmacokinetic parameters after administration of 100 µg and 20 mg omeprazole in healthy subjects suggest dose proportionality. Omeprazole clearance was significantly decreased by fluconazole from 388 [95% CI: 266-565] to 47.2 [42.8-52.0] mL/min after 20 mg omeprazole and even further after 100 µg omeprazole (29.4 [24.5-35.1] mL/min). Rifampicin increased CYP2C19-mediated omeprazole metabolism. The omeprazole hydroxylation index was significantly related to omeprazole clearance for both doses. Both fluconazole and rifampicin altered CYP3A4 activity whereas no change of CYP2D6 activity was observed at all. CONCLUSIONS: Microdosed oral omeprazole is suitable to determine CYP2C19 activity, also during enzyme inhibition and induction. However, the administration of sodium bicarbonate buffer also had a small influence on all victim drugs used. TRIAL REGISTRATION: EudraCT: 2017-004270-34.


Subject(s)
Cytochrome P-450 CYP2C19 , Omeprazole , Cytochrome P-450 CYP2C19/genetics , Cytochrome P-450 CYP2C19/metabolism , Cytochrome P-450 CYP3A/metabolism , Drug Interactions , Fluconazole/administration & dosage , Humans , Midazolam/administration & dosage , Midazolam/pharmacokinetics , Omeprazole/administration & dosage , Rifampin/administration & dosage , Sodium Bicarbonate/administration & dosage , Yohimbine/administration & dosage
2.
Clin Pharmacokinet ; 61(1): 97-109, 2022 01.
Article in English | MEDLINE | ID: mdl-34273071

ABSTRACT

BACKGROUND: Factor Xa inhibitors (FXaIs) are increasingly used without having sufficient drug-drug interaction data. Using a microdosed cocktail methodology could support filling the knowledge gap quickly. METHODS: In a randomised crossover trial, we investigated the drug-drug interactions between six oral azole antifungals and a microdosed FXaI cocktail containing 25 µg rivaroxaban, 25 µg apixaban, and 50 µg edoxaban. Additionally, different enzyme activities were also monitored using a microdosed cocktail approach. The six different azole antifungals were administered in therapeutic doses over a 24 h period, while the microdosed cocktails were administered 1 h after administration of the azole antifungals. RESULTS: Ketoconazole and posaconazole were the strongest perpetrators, showing similar increases as apixaban (area under the concentration-time curve ratio [AUCR] 1.64 and 1.62, respectively) and edoxaban (AUCR 2.08 and 2.1, respectively), whereas ketoconazole increased rivaroxaban 2.32-fold but only increased posaconazole 1.37-fold. All other azole antifungals showed less perpetrator effects on the FXaIs. Cytochrome P450 (CYP) 3A inhibition was confirmed using microdosed midazolam, with ketoconazole also the most potent perpetrator (8.42-fold). CONCLUSION: Drug-drug interactions for three victim drugs of the same drug class (FXaIs) with different clearance mechanisms can be studied using a microdosed cocktail approach. Using members of the azole antifungal drug class as perpetrators, multiple interactions can be studied in one trial, and a more detailed insight into the underlying interaction mechanisms is possible. CLINICAL TRIAL REGISTRATION: EudraCT number: 2017-004453-16.


Subject(s)
Antifungal Agents , Pharmaceutical Preparations , Antifungal Agents/pharmacology , Azoles/pharmacology , Drug Interactions , Factor Xa Inhibitors , Humans , Rivaroxaban
3.
Eur J Pharm Sci ; 169: 106076, 2022 Feb 01.
Article in English | MEDLINE | ID: mdl-34856349

ABSTRACT

Ketoconazole is a strong inhibitor of cytochrome P450 3A4 (CYP3A4) and of P-glycoprotein (P-gp) and is often used as an index inhibitor especially for CYP3A4-mediated drug metabolism. A preliminary physiologically based pharmacokinetic (PBPK) model for drug-drug interactions indicated possible involvement of a metabolite to the perpetrator potential of ketoconazole. Still unknown for humans, in rodents, N-deacetyl ketoconazole (DAK) has been identified as the major ketoconazole metabolite. We therefore investigated in vitro, whether DAK also inhibits the human CYPs and drug transporters targeted by ketoconazole and quantified DAK in human plasma from healthy volunteers after receiving a single oral dose of 400 mg ketoconazole. Our data demonstrated that DAK also inhibits CYP3A4 (2.4-fold less potent than ketoconazole), CYP2D6 (13-fold more potent than ketoconazole), CYP2C19 (equally potent), P-gp (3.4-fold less potent than ketoconazole), breast cancer resistance protein (more potent than ketoconazole) and organic anion transporting polypeptide 1B1 and 1B3 (7.8-fold and 2.6-fold less potent than ketoconazole). After a single oral dose of 400 mg ketoconazole, maximum concentrations of DAK in human plasma were only 3.1 ‰ of the parent compound. However, assuming that DAK also highly accumulates in the human liver as demonstrated for rodents, inhibition of the proteins investigated could also be conceivable in vivo. In conclusion, DAK inhibits several CYPs and drug transporters, which might contribute to the perpetrator potential of ketoconazole.


Subject(s)
Ketoconazole , Pharmaceutical Preparations , ATP Binding Cassette Transporter, Subfamily G, Member 2 , Drug Interactions , Neoplasm Proteins
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