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α-生育酚与 CYP4F2 结合机制的研究:同源建模、分子对接和分子动力学模拟研究。

Insights into the binding mechanism between α-TOH and CYP4F2: A homology modeling, molecular docking, and molecular dynamics simulation study.

机构信息

Institute of Theoretical Chemistry, College of Chemistry, Jilin University, Changchun, China.

School of Pharmaceutical Sciences, Jilin University, Changchun, China.

出版信息

J Cell Biochem. 2023 Apr;124(4):573-585. doi: 10.1002/jcb.30391. Epub 2023 Mar 15.

DOI:10.1002/jcb.30391
PMID:36924012
Abstract

α-Tocopherol (α-TOH) is a potent antioxidant. The concentrations of α-TOH in plasma are closely related to human health. α-TOH can be regulated by the metabolism of cytochrome P450 4F2 (CYP4F2). However, the atomic-level basis for this regulation process remains elusive. Here, we successfully constructed the structure of CYP4F2 by homology modeling and obtained the α-TOH-CYP4F2 complex models using molecular docking. Three parallel 500 ns molecular dynamics simulations were performed on each complex model to investigate the details of the interaction between α-TOH and CYP4F2. MM-GBSA method combined with principal component analysis shows that 8 key residues establish a hydrophobic cavity stabilizing α-TOH in the pocket of CYP4F2 and S423 forms an important hydrogen bond with α-TOH anchoring α-TOH in the favorable position for ω-hydroxylation. Based on our simulation results and the experimental facts, we designed mutation simulation experiments to clarify the important role of two key residues (S423 and V433) in the binding of α-TOH with CYP4F2. The results show that the mutations directly or indirectly change the binding mode of α-TOH and decrease its binding affinity with CYP4F2, which is unfavorable for ω-hydroxylation. Our results could enrich the information on structure-function relationships of CYP4F2 and provide valuable insights into the regulatory mechanism of CYP4F2 on the metabolism of α-TOH.

摘要

α-生育酚(α-TOH)是一种有效的抗氧化剂。血浆中α-TOH 的浓度与人的健康密切相关。α-TOH 可以通过细胞色素 P450 4F2(CYP4F2)的代谢来调节。然而,这种调节过程的原子水平基础仍然难以捉摸。在这里,我们通过同源建模成功构建了 CYP4F2 的结构,并使用分子对接获得了α-TOH-CYP4F2 复合物模型。对每个复合物模型进行了三个平行的 500ns 分子动力学模拟,以研究α-TOH 和 CYP4F2 之间相互作用的细节。MM-GBSA 方法结合主成分分析表明,8 个关键残基建立了一个疏水性腔,稳定 CYP4F2 中的α-TOH,并与 S423 形成重要氢键,将α-TOH 锚定在ω-羟化的有利位置。基于我们的模拟结果和实验事实,我们设计了突变模拟实验,以阐明两个关键残基(S423 和 V433)在α-TOH 与 CYP4F2 结合中的重要作用。结果表明,突变直接或间接地改变了α-TOH 的结合模式,降低了其与 CYP4F2 的结合亲和力,不利于ω-羟化。我们的结果可以丰富 CYP4F2 结构-功能关系的信息,并为 CYP4F2 对α-TOH 代谢的调节机制提供有价值的见解。

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