Mechanism-based inactivation of CYP450 enzymes: a case study of lapatinib
Han Kiat Ho1, James Chun Yip Chan, Klarissa D Hardy
1Department of Pharmacy, Faculty of Science, National University of Singapore , Singapore and.
Abstract:
Mechanism-based inactivation (MBI) of CYP450 enzymes is a unique form of inhibition in which the enzymatic machinery of the victim is responsible for generation of the reactive metabolite. This precondition sets up a time-dependency for the inactivation process, a hallmark feature that characterizes all MBI. Yet, MBI itself is a complex biochemical phenomenon that operates in different modes, namely, covalent binding to apoprotein, covalent binding of the porphyrin group and also complexation of the catalytic iron. Using lapatinib as a recent example of toxicological interest, we present an example of a mixed-function MBI that can confound clinical drug-drug interactions manifestation. Lapatinib exhibits both covalent binding to the apoprotein and formation of a metabolite-intermediate complex in an enzyme-selective manner (CYP3A4 versus CYP3A5), each with different reactive metabolites. The clinical implication of this effect is also contingent upon genetic polymorphisms of the enzyme involved as well as the co-administration of other substrates, inhibitors or inducers, culminating in drug-drug interactions. This understanding recapitulates the importance of applying isoform-specific mechanistic investigations to develop customized strategies to manage such outcomes.
Insights
Mechanism-based inactivation (MBI) of CYP450 enzymes involves reactive metabolites generated by the enzyme itself, leading to time-dependent inhibition. Understanding these complex processes, like lapatinib
Area of Science:
- Biochemistry
- Pharmacology
- Toxicology
Background:
- Mechanism-based inactivation (MBI) is a time-dependent inhibition of CYP450 enzymes.
- MBI involves reactive metabolites generated by the enzyme's own machinery.
- MBI can occur through apoprotein binding, porphyrin binding, or iron complexation.
Purpose of the Study:
- To present lapatinib as a case study of mixed-function MBI.
- To illustrate how MBI can complicate drug-drug interactions.
- To highlight the importance of enzyme isoform-specific investigations.
Main Methods:
- Investigated lapatinib's interaction with CYP450 enzymes.
- Analyzed MBI modes including apoprotein binding and metabolite-intermediate complex formation.
- Examined enzyme selectivity (CYP3A4 vs. CYP3A5).
Main Results:
- Lapatinib demonstrated mixed-function MBI via apoprotein binding and metabolite-intermediate complex formation.
- These interactions were enzyme-selective between CYP3A4 and CYP3A5.
- Different reactive metabolites were generated through distinct MBI pathways.
Conclusions:
- Mixed-function MBI, as seen with lapatinib, can significantly impact drug-drug interactions.
- Clinical outcomes are influenced by genetic polymorphisms and co-administered drugs.
- Isoform-specific mechanistic studies are crucial for managing MBI-related drug interactions.
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