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Human Liver Microphysiological System for Assessing Drug-Induced Liver Toxicity In Vitro
Published on: January 31, 2022
Itraconazole-Induced Increases in Gilteritinib Exposure Are Mediated by CYP3A and OATP1B
Dominique A Garrison1, Yan Jin1, Zahra Talebi1
1Division of Pharmaceutics and Pharmacology, The Ohio State University, Columbus, OH 43210, USA.
Abstract:
Gilteritinib, an FDA-approved tyrosine kinase inhibitor approved for the treatment of relapsed/refractory FLT3-mutated acute myeloid leukemia, is primarily eliminated via CYP3A4-mediated metabolism, a pathway that is sensitive to the co-administration of known CYP3A4 inhibitors, such as itraconazole. However, the precise mechanism by which itraconazole and other CYP3A-modulating drugs affect the absorption and disposition of gilteritinib remains unclear. In the present investigation, we demonstrate that pretreatment with itraconazole is associated with a significant increase in the systemic exposure to gilteritinib in mice, recapitulating the observed clinical drug-drug interaction. However, the plasma levels of gilteritinib were only modestly increased in CYP3A-deficient mice and not further influenced by itraconazole. Ensuing in vitro and in vivo studies revealed that gilteritinib is a transported substrate of OATP1B-type transporters, that gilteritinib exposure is increased in mice with OATP1B2 deficiency, and that the ability of itraconazole to inhibit OATP1B-type transport in vivo is contingent on its metabolism by CYP3A isoforms. These findings provide new insight into the pharmacokinetic properties of gilteritinib and into the molecular mechanisms underlying drug-drug interactions with itraconazole.
Insights
Itraconazole increases gilteritinib exposure by inhibiting OATP1B transporters, a process dependent on CYP3A metabolism. This explains drug interactions with gilteritinib, a treatment for FLT3-mutated acute myeloid leukemia.
Area of Science:
- Pharmacology
- Drug Metabolism
- Drug Interactions
Background:
- Gilteritinib, a tyrosine kinase inhibitor for FLT3-mutated acute myeloid leukemia, is metabolized by CYP3A4.
- CYP3A4 inhibitors like itraconazole can alter gilteritinib exposure, but the mechanism is unclear.
Purpose of the Study:
- To elucidate the mechanism of drug-drug interactions between gilteritinib and itraconazole.
- To investigate the role of CYP3A and OATP1B transporters in gilteritinib disposition.
Main Methods:
- Drug interaction studies in wild-type and CYP3A-deficient mice.
- In vitro and in vivo transporter assays.
- Assessment of OATP1B-mediated transport of gilteritinib.
Main Results:
- Itraconazole significantly increased gilteritinib systemic exposure in mice.
- CYP3A deficiency only modestly increased gilteritinib levels, with no further itraconazole effect.
- Gilteritinib is an OATP1B transporter substrate, and its exposure increased in OATP1B2-deficient mice.
- Itraconazole's inhibition of OATP1B transport was dependent on CYP3A metabolism.
Conclusions:
- Gilteritinib exposure is influenced by both CYP3A4 metabolism and OATP1B transporter activity.
- Itraconazole interacts with gilteritinib via OATP1B inhibition, which requires itraconazole's own CYP3A-mediated metabolism.
- These findings clarify the pharmacokinetic interactions of gilteritinib.
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