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Published on: April 4, 2018
Functional influence of human CYP2D6 allelic variations: P34S, E418K, S486T, and R296C
Joohwan Kim1, Young-Ran Lim, Songhee Han
1Department of Biological Sciences, Konkuk University, 120 Neungdong-ro, Gwangjjn-gu, Seoul, 143-701, Korea.
Abstract:
CYP2D6 is responsible for the oxidative metabolism of 20-25 % of clinical drugs and its genetic polymorphisms can significantly influence the drug metabolism. In this study, we analyzed the functional activities of four nonsynonymous single nucleotide polymorphisms from CYP2D6*52 allele, which were recently found, and one found frequently in CYP2D6 alleles. Recombinant variant enzymes of E418K, S486T, and R296C were successfully expressed in Escherichia coli and purified. However, a CYP holoenzyme spectrum of P34S variant was not detected in E. coli whole cell level. Structural analysis indicated that P34S mutation seemed to perturb a highly conserved proline-rich N-terminus of CYP2D6. Steady state kinetic analyses showed the significant reductions of enzymatic activities in E418K and R296C variants. In the case of bufuralol 1'-hydroxylation, a novel mutant, E418K, showed 32 % decrease in catalytic efficiency (k cat/K m) mainly due to the decrease of k cat value. R296C showed much greater reduction in the catalytic efficiency (9 % of wild-type) due to both of a decrease of k cat value and an increase of K m value. In the case of dextromethorphan O-demethylation, E418K showed both of a decrease of k cat value and an increase K m value to result in ~43 % reduction of catalytic efficiency. A highly decreased catalytic efficiency (~6 % of wild-type) in the mutant of R296C also was observed mainly due to the dramatic change of k cat value of dextromethorphan O-demethylation. These results suggested that individuals carrying these allelic variants are likely to have the altered metabolic abilities of many clinical drugs therefore, these polymorphisms of CYP2D6 should be much concerned for reliable drug treatment.
Insights
Genetic variations in CYP2D6 enzymes, like E418K and R296C, significantly alter drug metabolism. These CYP2D6 polymorphisms impact drug efficacy and safety, necessitating careful consideration in clinical practice.
Area of Science:
- Pharmacogenomics
- Enzymology
- Drug Metabolism
Background:
- Cytochrome P450 2D6 (CYP2D6) metabolizes 20-25% of clinical drugs.
- Genetic polymorphisms in CYP2D6 significantly affect drug metabolism and patient response.
- Recent identification of novel CYP2D6 variants necessitates functional characterization.
Purpose of the Study:
- To analyze the functional activities of four nonsynonymous single nucleotide polymorphisms (SNPs) from the CYP2D6*52 allele and one common CYP2D6 variant.
- To evaluate the impact of specific CYP2D6 mutations (E418K, S486T, R296C, P34S) on enzyme activity.
- To assess the consequences of these genetic variations on the metabolism of key drug substrates.
Main Methods:
- Recombinant expression and purification of CYP2D6 variant enzymes (E418K, S486T, R296C) in E. coli.
- Assessment of CYP holoenzyme spectrum for the P34S variant.
- Structural analysis of the P34S mutation's effect on the N-terminus.
- Steady-state kinetic analyses using bufuralol 1'-hydroxylation and dextromethorphan O-demethylation assays.
Main Results:
- E418K and R296C variants showed significantly reduced enzymatic activities.
- E418K decreased catalytic efficiency for bufuralol metabolism by 32% (kcat/Km).
- R296C markedly reduced catalytic efficiency for bufuralol (9% of wild-type) and dextromethorphan (6% of wild-type) metabolism.
- P34S variant expression was not detected, and structural analysis suggested N-terminal perturbation.
Conclusions:
- The studied CYP2D6 polymorphisms (E418K, R296C) lead to altered metabolic abilities for clinical drugs.
- Individuals with these allelic variants may experience altered drug efficacy and safety profiles.
- These CYP2D6 polymorphisms warrant significant attention for ensuring reliable and safe drug therapy.
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