Functional characterization of five CYP2C8 variants and prediction of CYP2C8 genotype-dependent effects onin vitroandin vivodrug–drug interactions

CYP2C8 药理学 曲格列酮 体内 生物 生物信息学 药代动力学 化学 CYP2C9 基因型 生物化学 遗传学 受体 基因 过氧化物酶体增殖物激活受体
作者
Yiwen Gao,Duan Liu,Huijuan Wang,Jingjing Zhu,Chao Chen
出处
期刊:Xenobiotica [Taylor & Francis]
卷期号:40 (7): 467-475 被引量:61
标识
DOI:10.3109/00498254.2010.487163
摘要

To analyze the polymorphic activities of CYP2C8 and evaluate their impact on drug inhibitory potential, three CYP2C8 allelic variants (CYP2C8.2, CYP2C8.3, and CYP2C8.4), two non-synonymous single nucleotide polymorphic variants (R139K and K399R, carried by CYP2C8.3), and wild-type CYP2C8 (CYP2C8.1) were heterologously expressed in yeast, and their enzymatic activities were characterized. CYP2C8 inhibition-based in vitro and in vivo drug–drug interactions (DDIs) in wild-type and variant CYP2C8s were then predicted.Functional characterization of five CYP2C8 variants revealed similar enzymatic activity in R139K and low activity in CYP2C8.2, CYP2C8.3, CYP2C8.4, and K399R compared with CYP2C8.1. The systematic analysis of these CYP2C8 variants can provide more homogeneous data for predicting CYP2C8 phenotypes and could be applied to personalized drug therapy.Prediction of DDIs indicated that CYP2C8.4, R139K, and K399R dramatically alter the IC50 values of nifedipine, troglitazone, and raloxifene, and R139K qualitatively and quantitatively reduces the risk of in vivo paclitaxel–raloxifene and paclitaxel–troglitazone interactions. The results provide the first evidence that CYP2C8 inhibition-based DDIs may be influenced by CYP2C8 genetic polymorphisms. These inhibition data can be used by pharmacologists in the design of in vivo studies to further assess and address the potential role of CYP2C8 genotype-dependent inhibition in clinical DDIs.

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