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铜锌超氧化物歧化酶:催化机制的理论见解

Copper-zinc superoxide dismutase: theoretical insights into the catalytic mechanism.

作者信息

Pelmenschikov Vladimir, Siegbahn Per E M

机构信息

Department of Physics, Stockholm University, S-106 91 Stockholm, Sweden.

出版信息

Inorg Chem. 2005 May 2;44(9):3311-20. doi: 10.1021/ic050018g.

Abstract

The mechanism for the toxic superoxide radical disproportionation to molecular oxygen and hydrogen peroxide by copper-zinc superoxide dismutase (CuZnSOD) has been studied using the B3LYP hybrid density functional. On the basis of the X-ray structure of the enzyme, the molecular system investigated includes the first-shell protein ligands of the two metal centers as well as the second-shell ligand Asp122. The substrates of the model reaction are two superoxide radical anions, approaching the copper center at the beginning of two half-reactions: the first part of the catalytic cycle involving Cu+ oxidation and the second part reducing Cu2+ back to its initial state. The quantitative free energy profile of the reaction is obtained and discussed in connection with the experimental data on the reduction potentials and CuZnSOD kinetics. The optimized structures are analyzed and compared to the experimental ones. The two transition states alternate the protonation state of His61 and correspond to histidine Cu-His61-Zn bridge rupture/reformation. Modifications applied to the initial model allow the importance of Asp122 for catalysis to be estimated.

摘要

利用B3LYP杂化密度泛函研究了铜锌超氧化物歧化酶(CuZnSOD)将有毒的超氧自由基歧化为分子氧和过氧化氢的机制。基于该酶的X射线结构,所研究的分子体系包括两个金属中心的第一壳层蛋白质配体以及第二壳层配体天冬氨酸122。模型反应的底物是两个超氧自由基阴离子,在两个半反应开始时接近铜中心:催化循环的第一部分涉及Cu+氧化,第二部分将Cu2+还原回其初始状态。得到了反应的定量自由能曲线,并结合还原电位和CuZnSOD动力学的实验数据进行了讨论。对优化后的结构进行了分析,并与实验结构进行了比较。两个过渡态交替组氨酸61的质子化状态,对应于组氨酸铜-组氨酸61-锌桥的断裂/重新形成。对初始模型进行的修改使得能够评估天冬氨酸122对催化作用的重要性。

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