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大分子环境对金属酶活性中心静电势的影响:以甲酸脱氢酶为例。

Influence of the Greater Protein Environment on the Electrostatic Potential in Metalloenzyme Active Sites: The Case of Formate Dehydrogenase.

机构信息

Department of Chemical Engineering, Massachusetts Institute of Technology, Cambridge, Massachusetts 02139, United States.

Department of Biological Engineering, Massachusetts Institute of Technology, Cambridge, Massachusetts 02139, United States.

出版信息

J Phys Chem B. 2022 Jun 9;126(22):4069-4079. doi: 10.1021/acs.jpcb.2c02260. Epub 2022 May 24.

Abstract

The Mo/W-containing metalloenzyme formate dehydrogenase (FDH) is an efficient and selective natural catalyst that reversibly converts CO to formate under ambient conditions. In this study, we investigate the impact of the greater protein environment on the electrostatic potential (ESP) of the active site. To model the enzyme environment, we used a combination of classical molecular dynamics and multiscale quantum-mechanical (QM)/molecular-mechanical (MM) simulations. We leverage charge shift analysis to systematically construct QM regions and analyze the electronic environment of the active site by evaluating the degree of charge transfer between the core active site and the protein environment. The contribution of the terminal chalcogen ligand to the ESP of the metal center is substantial and dependent on the chalcogen identity, with similar, less negative ESPs for Se and S terminal chalcogens in comparison to O regardless of whether the metal is Mo or W. The orientation of the side chains and conformations of the cofactor also affect the ESP, highlighting the importance of sampling dynamic fluctuations in the protein. Overall, our observations suggest that the terminal chalcogen ligand identity plays an important role in the enzymatic activity of FDH, suggesting opportunities for a rational bioinspired catalyst design.

摘要

含 Mo/W 的金属酶甲酸脱氢酶(FDH)是一种高效且具有选择性的天然催化剂,可在环境条件下将 CO 可逆转化为甲酸。在本研究中,我们研究了更大的蛋白质环境对活性位点静电势(ESP)的影响。为了模拟酶环境,我们使用了经典分子动力学和多尺度量子力学(QM)/分子力学(MM)模拟的组合。我们利用电荷转移分析系统地构建 QM 区域,并通过评估核心活性位点与蛋白质环境之间的电荷转移程度来分析活性位点的电子环境。终端硫属元素配体对金属中心 ESP 的贡献很大,且取决于硫属元素的种类,与 O 相比,无论金属是 Mo 还是 W,Se 和 S 终端硫属元素的 ESP 相似,且更负。侧链的取向和辅因子的构象也会影响 ESP,这突出了在蛋白质中采样动态波动的重要性。总的来说,我们的观察结果表明,终端硫属元素配体的种类对 FDH 的酶活性起着重要作用,这为合理的仿生催化剂设计提供了机会。

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