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Quantum Mechanics/Molecular Mechanics Modeling of Regioselectivity of Drug Metabolism in Cytochrome P450 2C9

机译:细胞色素P450 2C9药物代谢区域选择性的量子力学/分子力学建模

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摘要

Cytochrome P450 enzymes (P450s) are important in drug metabolism and have been linked to adverse drug reactions. P450s display broad substrate reactivity, and prediction of metabolites is complex QM/MM studies of P450 reactivity have provided insight into important details of the reaction mechanisms and have the potential to make predictions of metabolite formation. Here we present a comprehensive study of the oxidation of three widely used pharmaceutical compounds (S-ibuprofen, diclofenac, and S-warfarin) by one of the major drug-metabolizing P450 isoforms, CYP2C9. The reaction barriers to substrate oxidation by the iron-oxo species (Compound Ⅰ) have been calculated at the B3LYP-D/CHARMM27 level for different possible metabolism sites for each drug, on multiple pathways. In the cases of ibuprofen and warfarin, the process with the lowest activation energy is consistent with the experimentally preferred metabolite. For diclofenac, the pathway leading to the experimentally observed metabolite is not the one with the lowest activation energy. This apparent inconsistency with experiment might be explained by the two very different binding modes involved in oxidation at the two competing positions. The carboxylate of diclofenac interacts strongly with the CYP2C9 Arg108 side chain in the transition state for formation of the observed metabolite-but not in that for the competing pathway. We compare reaction barriers calculated both in the presence and in the absence of the protein and observe a marked improvement in selectivity prediction ability upon inclusion of the protein for all of the substrates studied. The barriers calculated with the protein are generally higher than those calculated in the gas phase. This suggests that active-site residues surrounding the substrate play an important role in controlling selectivity in CYP2C9. The results show that inclusion of sampling (particularly) and dispersion effects is important in making accurate predictions of drug metabolism selectivity of P450s using QM/MM methods.
机译:细胞色素P450酶(P450s)在药物代谢中很重要,并且与药物不良反应有关。 P450具有广泛的底物反应性,代谢物的预测是复杂的QM / MM对P450反应性的研究为深入了解反应机理提供了重要信息,并具有预测代谢物形成的潜力。在这里,我们对一种主要的药物代谢性P450异构体CYP2C9氧化三种广泛使用的药物化合物(S-布洛芬,双氯芬酸和S-华法林)进行了全面研究。在多种途径下,对于每种药物可能的新陈代谢位点,已经在B3LYP-D / CHARMM27水平上计算了铁-氧物种(化合物Ⅰ)对底物氧化的反应障碍。在布洛芬和华法林的情况下,具有最低活化能的过程与实验上优选的代谢物是一致的。对于双氯芬酸而言,导致实验观察到的代谢产物的途径并不是活化能最低的途径。这种明显与实验不一致的现象可能是由两个竞争位置的氧化中涉及的两种非常不同的结合模式所解释的。双氯芬酸的羧酸盐在过渡态下与CYP2C9 Arg108侧链强烈相互作用,形成了观察到的代谢物,但在竞争途径中没有。我们比较了在存在和不存在蛋白质的情况下计算出的反应障碍,并观察到所有被研究的底物都包含蛋白质时,选择性预测能力有了显着提高。用蛋白质计算的势垒通常高于气相计算的势垒。这表明底物周围的活性位点残基在控制CYP2C9的选择性中起重要作用。结果表明,包括采样(特别是采样)和分散效应对于使用QM / MM方法准确预测P450的药物代谢选择性非常重要。

著录项

  • 来源
    《Journal of the American Chemical Society》 |2013年第21期|8001-8015|共15页
  • 作者单位

    Centre for Computational Chemistry, School of Chemistry, University of Bristol, Cantock's Close, Bristol, BS8 1TS, U.K.;

    Centre for Computational Chemistry, School of Chemistry, University of Bristol, Cantock's Close, Bristol, BS8 1TS, U.K.;

    Centre for Computational Chemistry, School of Chemistry, University of Bristol, Cantock's Close, Bristol, BS8 1TS, U.K.;

    Centre for Computational Chemistry, School of Chemistry, University of Bristol, Cantock's Close, Bristol, BS8 1TS, U.K.;

    Vernalis Research & Development Ltd., Cambridge CB21 6GB, U.K.;

    Argenta, 8/9 Spire Green Centre, Flex Meadow,Harlow, Essex CM19 STR, U.K.,Pfizer Global Research & Development, Ramsgate Road, CT13 9NJ Sandwich, U.K.;

    Centre for Computational Chemistry, School of Chemistry, University of Bristol, Cantock's Close, Bristol, BS8 1TS, U.K.;

    Centre for Computational Chemistry, School of Chemistry, University of Bristol, Cantock's Close, Bristol, BS8 1TS, U.K.;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
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  • 正文语种 eng
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