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Interindividual Variability in Cytochrome P450 3A and 1A Activity Influences Sunitinib Metabolism and Bioactivation
Elizabeth A Burnham1, Arsany A Abouda1, Jennifer E Bissada1
1Department of Pharmaceutical Sciences, Lipscomb University College of Pharmacy and Health Sciences, Nashville, Tennessee 37204, United States.
Abstract:
Sunitinib is an orally administered tyrosine kinase inhibitor associated with idiosyncratic hepatotoxicity; however, the mechanisms of this toxicity remain unclear. We have previously shown that cytochromes P450 1A2 and 3A4 catalyze sunitinib metabolic activation via oxidative defluorination leading to a chemically reactive, potentially toxic quinoneimine, trapped as a glutathione (GSH) conjugate (M5). The goals of this study were to determine the impact of interindividual variability in P450 1A and 3A activity on sunitinib bioactivation to the reactive quinoneimine and sunitinib N-dealkylation to the primary active metabolite N-desethylsunitinib (M1). Experiments were conducted in vitro using single-donor human liver microsomes and human hepatocytes. Relative sunitinib metabolite levels were measured by liquid chromatography-tandem mass spectrometry. In human liver microsomes, the P450 3A inhibitor ketoconazole significantly reduced M1 formation compared to the control. The P450 1A2 inhibitor furafylline significantly reduced defluorosunitinib (M3) and M5 formation compared to the control but had minimal effect on M1. In CYP3A5-genotyped human liver microsomes from 12 individual donors, M1 formation was highly correlated with P450 3A activity measured by midazolam 1'-hydroxylation, and M3 and M5 formation was correlated with P450 1A2 activity estimated by phenacetin O-deethylation. M3 and M5 formation was also associated with P450 3A5-selective activity. In sandwich-cultured human hepatocytes, the P450 3A inducer rifampicin significantly increased M1 levels. P450 1A induction by omeprazole markedly increased M3 formation and the generation of a quinoneimine-cysteine conjugate (M6) identified as a downstream metabolite of M5. The nonselective P450 inhibitor 1-aminobenzotriazole reduced each of these metabolites (M1, M3, and M6). Collectively, these findings indicate that P450 3A activity is a key determinant of sunitinib N-dealkylation to the active metabolite M1, and P450 1A (and potentially 3A5) activity influences sunitinib bioactivation to the reactive quinoneimine metabolite. Accordingly, modulation of P450 activity due to genetic and/or nongenetic factors may impact the risk of sunitinib-associated toxicities.
Insights
Cytochrome P450 3A activity drives sunitinib activation to its active metabolite (M1). Cytochrome P450 1A and 3A5 activity influence bioactivation to a reactive quinoneimine, impacting toxicity risk.
Area of Science:
- Pharmacology
- Drug Metabolism
- Toxicology
Background:
- Sunitinib, a tyrosine kinase inhibitor, is linked to idiosyncratic hepatotoxicity.
- Mechanisms underlying sunitinib-induced liver injury are not fully understood.
- Previous research identified P450 1A2 and 3A4 in sunitinib metabolic activation to a reactive quinoneimine (M5).
Purpose of the Study:
- To investigate the impact of interindividual variability in P450 1A and 3A activity on sunitinib bioactivation.
- To determine the role of P450 enzymes in the formation of the active metabolite (M1) and the reactive quinoneimine (M5).
Main Methods:
- In vitro studies using human liver microsomes and hepatocytes.
- Metabolite quantification via liquid chromatography-tandem mass spectrometry.
- Enzyme inhibition and induction studies with specific P450 inhibitors and inducers.
Main Results:
- P450 3A activity correlated with M1 formation, while P450 1A2 activity correlated with M3 and M5 formation.
- CYP3A5 genotype influenced M3 and M5 formation.
- Induction of P450 1A and 3A pathways altered metabolite profiles, with P450 1A induction increasing reactive metabolite formation.
Conclusions:
- P450 3A activity is critical for sunitinib N-dealkylation to the active metabolite M1.
- P450 1A and potentially P450 3A5 activity mediate bioactivation to the toxic quinoneimine.
- Genetic and environmental factors affecting P450 activity may influence the risk of sunitinib-associated toxicities.
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