Mechanisms of Docking of Superoxide Ions in the Catalytic Cycle of Manganese and Iron Superoxide Dismutases

A. Ryabykh, O. Maslova, S. Beznosyuk
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Abstract

In this paper, we propose an approach to resolving some questions about the catalytic action of manganese and iron superoxide dismutases. At the level of a pure quantum-chemical calculation using an ORCA 5.0.3 program, a PBE functional and a def2-SVP and def2-TZVP basis sets, the possible mechanisms of superoxide ions binding to the active sites of enzymes, the electron transfer distances and their characteristics were estab-lished. It is shown that the initial form of the fifth ligand in both active centers is the hydroxide ion OH–. Be-fore the primary electron transfer, active sites are protonated, the hydroxide ion is converted into a water mol-ecule H2O. Primary electron transfers from the superoxide ion to Mn3+-SOD and Fe3+-SOD occur by the as-sociative mechanism, with the formation of an octahedral complex, at a transfer distance of 1.95 Å and 2.56 Å, respectively. At the second stage, the superoxide ion accepts the electron by the substitution mecha-nism from Mn2+-SOD at the transfer distance of 2 Å to form bonds with the water molecule and a tyrosine. The superoxide ion accepts the electron from Fe2+-SOD through the outer-sphere mechanism, where it binds to a histidine and the water molecule at the transfer distance of 4.24 Å.
锰铁超氧化物歧化酶催化循环中超氧化物离子对接机理研究
本文对锰和铁的超氧化物歧化酶催化作用的一些问题提出了一种解决方法。在纯量子化学计算水平上,利用ORCA 5.0.3程序、PBE泛函和def2-SVP和def2-TZVP基集,建立了超氧离子与酶活性位点结合的可能机制、电子转移距离及其特征。结果表明,在两个活性中心,第五配体的初始形态都是氢氧根离子OH -。在一次电子转移之前,活性位点被质子化,氢氧根离子转化为水分子H2O。从超氧离子向Mn3+-SOD和Fe3+-SOD的一次电子转移以缔合机制发生,形成八面体配合物,转移距离分别为1.95 Å和2.56 Å。在第二阶段,超氧离子以2 Å的转移距离从Mn2+-SOD中接受电子,与水分子和酪氨酸形成键。超氧离子通过外球机制接受来自Fe2+-SOD的电子,并与组氨酸和水分子结合,转移距离为4.24 Å。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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