Faculty of Pharmacy, Meijo University, 150 Yagotoyama, Tempaku-ku, Nagoya 468-8503, Japan.
Faculty of Pharmaceutical Sciences, Shonan University of Medical Sciences, 16-48 Kamishinano, Totsuka-ku, Yokohama 244-0806, Japan.
Int J Mol Sci. 2021 Sep 19;22(18):10119. doi: 10.3390/ijms221810119.
Cytochrome P450 (CYP) 2A6 is a monooxygenase involved in the metabolism of various endogenous and exogenous chemicals, such as nicotine and therapeutic drugs. The genetic polymorphisms in CYP2A6 are a cause of individual variation in smoking behavior and drug toxicities. The enzymatic activities of the allelic variants of CYP2A6 were analyzed in previous studies. However, the three-dimensional structures of the mutants were not investigated, and the mechanisms underlying activity reduction remain unknown. In this study, to investigate the structural changes involved in the reduction in enzymatic activities, we performed molecular dynamics simulations for ten allelic mutants of CYP2A6. For the calculated wild type structure, no significant structural changes were observed in comparison with the experimental structure. On the other hand, the mutations affected the interaction with heme, substrates, and the redox partner. In CYP2A6.44, a structural change in the substrate access channel was also observed. Those structural effects could explain the alteration of enzymatic activity caused by the mutations. The results of simulations provide useful information regarding the relationship between genotype and phenotype.
细胞色素 P450(CYP)2A6 是一种单加氧酶,参与各种内源性和外源性化学物质的代谢,如尼古丁和治疗药物。CYP2A6 的遗传多态性是导致吸烟行为和药物毒性个体差异的原因。在以前的研究中分析了 CYP2A6 等位变体的酶活性。然而,并未研究突变体的三维结构,并且活性降低的机制仍不清楚。在这项研究中,为了研究涉及酶活性降低的结构变化,我们对 CYP2A6 的十个等位基因突变体进行了分子动力学模拟。对于计算的野生型结构,与实验结构相比,没有观察到明显的结构变化。另一方面,突变影响了与血红素、底物和氧化还原伴侣的相互作用。在 CYP2A6.44 中,还观察到底物进入通道的结构变化。这些结构效应可以解释突变引起的酶活性改变。模拟结果提供了有关基因型和表型之间关系的有用信息。