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首页> 外文期刊>The journal of physical chemistry, B. Condensed matter, materials, surfaces, interfaces & biophysical >Adiabaticity of the Proton-Coupled Electron-Transfer Step in the Reduction of Superoxide Effected by Nickel-Containing Superoxide Dismutase Metallopeptide-Based Mimics
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Adiabaticity of the Proton-Coupled Electron-Transfer Step in the Reduction of Superoxide Effected by Nickel-Containing Superoxide Dismutase Metallopeptide-Based Mimics

机译:含镍超氧化物歧化酶基于金属肽的模拟物影响的超氧化物还原中质子耦合电子转移步骤的绝热性

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Nickel-containing superoxide dismutases (NiSODs) are bacterial metalloenzymes that catalyze the disproportionation of O-2(-). These enzymes take advantage of a redox-active nickel cofactor, which cycles between the Ni(II) and Ni(III) oxidation states, to catalytically disprotorptionate O-2(-). The Ni(II) center is ligated in a square planar N2S2 coordination environment, which, upon oxidation to Ni(III), becomes five-coordinate following the ligation of an axial imidazole ligand. Previous studies have suggested that metallopeptide-based mimics of NiSOD reduce O-2(-) through a proton-coupled electron transfer (PCET) reaction with the electron derived from a reduced Ni(II) center and the proton from a protonated, coordinated Ni(II)-S(H(+))-Cys moiety. The current work focuses on the O-2(-) reduction half-reaction of the catalytic cycle. In this study we calculate the vibronic coupling between the reactant and product diabatic surfaces using a semiclassical formalism to determine if the PCET reaction is proceeding through an adiabatic or nonadiabatic proton tunneling process. These results were then used to calculate H/D kinetic isotope effects for the PCET process. We find that as the axial imidazole ligand becomes more strongly associated with the Ni(II) center during the PCET reaction, the reaction becomes more nonadiabatic. This is reflected in the calculated H/D KIEs, which moderately increase as the reaction becomes more nonadiabatic. Furthermore, the results suggest that as the axial ligand becomes less Lewis basic the observed reaction rate constants for O-2(-) reduction should become faster because the reaction becomes more adiabatic. These conclusions are in-line with experimental observations. The results thus indicate that variations in the axial donor's ability to coordinate to the nickel center of NiSOD metallopeptide-based mimics will strongly influence the fundamental nature of the O-2(-) reduction process.
机译:含镍超氧化物歧化酶(NiSODs)是细菌金属酶,催化O-2(-)歧化。这些酶利用了具有氧化还原活性的镍辅助因子,该辅助因子在Ni(II)和Ni(III)氧化态之间循环,以催化分解O-2(-)。 Ni(II)中心被连接在一个方形的平面N2S2配位环境中,该环境在氧化成Ni(III)时会在轴向咪唑配体连接后变为五配位。以前的研究表明,NiSOD的基于金属肽的模拟物通过质子耦合电子转移(PCET)反应与还原的Ni(II)中心衍生的电子和质子化的配位Ni产生的质子一起还原O-2(-)。 (II)-S(H(+))-Cys部分。当前的工作集中于催化循环的O-2(-)还原半反应。在这项研究中,我们使用半经典形式来计算反应物和产物非绝热表面之间的振动耦合,以确定PCET反应是通过绝热还是非绝热质子隧穿过程进行。然后将这些结果用于计算PCET过程的H / D动力学同位素效应。我们发现,随着轴向咪唑配体在PCET反应过程中与Ni(II)中心更牢固地缔合,反应变得更加非绝热。这反映在所计算的H / D KIE中,随着反应变得更加绝热,其适度增加。此外,结果表明,随着轴向配体的路易斯碱含量降低,观察到的O-2(-)还原反应速率常数应变得更快,因为该反应变得更加绝热。这些结论与实验观察相符。因此,结果表明轴向供体与NiSOD基于金属肽的模拟物的镍中心配位的能力的变化将强烈影响O-2(-)还原过程的基本性质。

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