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通过密度泛函和静电方法对铜锌超氧化物歧化酶进行几何优化、能量学及氧化还原电位计算

CuZn Superoxide Dismutase Geometry Optimization, Energetics, and Redox Potential Calculations by Density Functional and Electrostatic Methods.

作者信息

Konecny Robert, Li Jian, Fisher Cindy L., Dillet Valerie, Bashford Donald, Noodleman Louis

机构信息

Department of Molecular Biology, TPC-15, The Scripps Research Institute, La Jolla, California 92037.

出版信息

Inorg Chem. 1999 Mar 8;38(5):940-950. doi: 10.1021/ic980730w.

Abstract

The structures, energetics, and orbital- and charge-dependent properties of copper zinc superoxide dismutase (CuZnSOD) have been studied using density functional and electrostatic methods. The CuZnSOD was represented with a model consisting of copper and zinc sites connected by a bridging histidine ligand. In addition to the bridge, three histidine ligands and one water molecule were bonded to the Cu ion in the copper site as first-shell ligands. Two histidine ligands and an aspartate were coordinated to the zinc ion in the zinc site. Full optimization of the model was performed using different functionals, both local and nonlocal. Geometrical parameters calculated with the nonlocal functionals agree well with the experimental X-ray data. In our calculated results, the His61 Nepsilon-Cu bond in the active site breaks during the reduction and protonation, consistent with a number of X-ray structures and with EXAFS and NMR evidence. The reduction potential and pK(a) of the coupled electron/proton reaction catalyzed by CuZnSOD were determined using different models for the extended environment-from an electrostatic representation of continuum solvent, to the full protein/solvent environment using a Poisson-Boltzmann method. The predicted redox potential and pK(a) values determined using the model with the full protein/solvent environment are in excellent agreement with experiment. Inclusion of the full protein environment is essential for an accurate description of the redox process. Although the zinc ion does not play a direct redox role in the dismutation, its electronic contribution is very important for the catalytic mechanism.

摘要

已使用密度泛函和静电方法研究了铜锌超氧化物歧化酶(CuZnSOD)的结构、能量以及与轨道和电荷相关的性质。CuZnSOD用一个由通过桥连组氨酸配体连接的铜和锌位点组成的模型表示。除了桥连配体,三个组氨酸配体和一个水分子作为第一配位层配体与铜位点中的铜离子键合。两个组氨酸配体和一个天冬氨酸与锌位点中的锌离子配位。使用不同的泛函(包括局域和非局域泛函)对模型进行了完全优化。用非局域泛函计算得到的几何参数与实验X射线数据吻合良好。在我们的计算结果中,活性位点中的His61 Nε-Cu键在还原和质子化过程中断裂,这与许多X射线结构以及EXAFS和NMR证据一致。使用不同的扩展环境模型(从连续介质溶剂的静电表示到使用泊松-玻尔兹曼方法的完整蛋白质/溶剂环境)确定了CuZnSOD催化的耦合电子/质子反应的还原电位和pKa。使用完整蛋白质/溶剂环境模型预测的氧化还原电位和pKa值与实验结果非常吻合。包含完整的蛋白质环境对于准确描述氧化还原过程至关重要。尽管锌离子在歧化反应中不直接起氧化还原作用,但其电子贡献对催化机制非常重要。

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