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基于理论活性位点突变体对可溶性环氧化物水解酶反应机制的深入研究

Insights into the reaction mechanism of soluble epoxide hydrolase from theoretical active site mutants.

作者信息

Hopmann Kathrin H, Himo Fahmi

机构信息

Department of Theoretical Chemistry, School of Biotechnology, Royal Institute of Technology, AlbaNova University Center, SE-106 91 Stockholm, Sweden.

出版信息

J Phys Chem B. 2006 Oct 26;110(42):21299-310. doi: 10.1021/jp063830t.

Abstract

Density functional theory calculations of active site mutants are used to gain insights into the reaction mechanism of the soluble epoxide hydrolases (sEHs). The quantum chemical model is based on the X-ray crystal structure of the human soluble epoxide hydrolase. The role of two conserved active site tyrosines is explored through in silico single and double mutations to phenylalanine. Full potential energy curves for hydrolysis of (1S,2S)-beta-methylstyrene oxide are presented. The results indicate that the two active site tyrosines act in concert to lower the activation barrier for the alkylation step. For the wild-type and three different tyrosine mutant models, the regioselectivity of epoxide opening is compared for the substrates (1S,2S)-beta-methylstyrene oxide and (S)-styrene oxide. An additional part of our study focuses on the importance of the catalytic histidine for the alkylation half-reaction. Different models are presented to explore the protonation state of the catalytic histidine in the alkylation step and to evaluate the possibility of an interaction between the nucleophilic aspartate and the catalytic histidine.

摘要

对活性位点突变体进行密度泛函理论计算,以深入了解可溶性环氧化物水解酶(sEHs)的反应机制。量子化学模型基于人可溶性环氧化物水解酶的X射线晶体结构。通过计算机模拟将两个保守的活性位点酪氨酸单点和双点突变为苯丙氨酸,来探究其作用。给出了(1S,2S)-β-甲基苯乙烯氧化物水解的完整势能曲线。结果表明,两个活性位点酪氨酸协同作用以降低烷基化步骤的活化能垒。对于野生型和三种不同的酪氨酸突变体模型,比较了底物(1S,2S)-β-甲基苯乙烯氧化物和(S)-苯乙烯氧化物的环氧化物开环区域选择性。我们研究的另一部分重点关注催化组氨酸对烷基化半反应的重要性。提出了不同的模型来探究烷基化步骤中催化组氨酸的质子化状态,并评估亲核天冬氨酸与催化组氨酸之间相互作用的可能性。

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