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环氧化物水解酶构象异质性在拆分大体积的具有药理学相关性的环氧化物底物中的应用。

Epoxide Hydrolase Conformational Heterogeneity for the Resolution of Bulky Pharmacologically Relevant Epoxide Substrates.

机构信息

Laboratori de Bioquímica Computacional (CompBioLab), Institut de Química Computacional i Catàlisi (IQCC), Departament de Química, Universitat de Girona (UdG), Carrer Maria Aurèlia Capmany 69, 17003, Girona, Spain.

Department of Chemistry and Biochemistry, University of California, Los Angeles (UCLA), 607 Charles E. Young Drive, Los Angeles, CA, 90095, USA.

出版信息

Chemistry. 2018 Aug 22;24(47):12254-12258. doi: 10.1002/chem.201801068. Epub 2018 May 25.

Abstract

The conformational landscape of Bacillus megaterium epoxide hydrolase (BmEH) and how it is altered by mutations that confer the enzyme the ability to accept bulky epoxide substrates has been investigated. Extensive molecular dynamics (MD) simulations coupled to active site volume calculations have unveiled relevant features of the enzyme conformational dynamics and function. Our long-timescale MD simulations identify key conformational states not previously observed by means of X-ray crystallography and short MD simulations that present the loop containing one of the catalytic residues, Asp239, in a wide-open conformation, which is likely involved in the binding of the epoxide substrate. Introduction of mutations M145S and F128A dramatically alters the conformational landscape of the enzyme. These singly mutated variants can accept bulky epoxide substrates due to the disorder induced by mutation in the α-helix containing the catalytic Tyr144 and some parts of the lid domain. These changes impact the enzyme active site, which is substantially wider and more complementary to the bulky pharmacologically relevant epoxide substrates.

摘要

已研究了巨大芽孢杆菌环氧化物水解酶(BmEH)的构象景观,以及导致该酶能够接受大体积环氧化物底物的突变如何改变其构象景观。广泛的分子动力学(MD)模拟结合活性位点体积计算揭示了酶构象动力学和功能的相关特征。我们的长时间尺度 MD 模拟确定了以前通过 X 射线晶体学和短 MD 模拟未观察到的关键构象状态,这些短 MD 模拟使包含一个催化残基 Asp239 的环呈现大开的构象,这可能涉及到环氧化物底物的结合。突变 M145S 和 F128A 的引入极大地改变了酶的构象景观。这些单突变变体可以接受大体积的环氧化物底物,这是由于包含催化 Tyr144 和盖子结构域的某些部分的α-螺旋中的突变引起的无序。这些变化影响酶的活性位点,该位点明显更宽,与大体积的药理学相关的环氧化物底物更互补。

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