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硫族元素(S、Se、Te)在谷胱甘肽过氧化物酶活性位点氧化机制中的作用。

Role of the Chalcogen (S, Se, Te) in the Oxidation Mechanism of the Glutathione Peroxidase Active Site.

作者信息

Bortoli Marco, Torsello Mauro, Bickelhaupt F Matthias, Orian Laura

机构信息

Dipartimento di Scienze Chimiche, Università degli Studi di Padova, Via Marzolo 1, 35129, Padova, Italy.

Present address, via Trieste 38, 25121, Brescia, Italy.

出版信息

Chemphyschem. 2017 Nov 3;18(21):2990-2998. doi: 10.1002/cphc.201700743. Epub 2017 Sep 27.

Abstract

The oxidation by H O of the human phospholipid hydroperoxide glutathione peroxidase (GPx4), used as a model peroxidase selenoenzyme, as well as that of its cysteine (Cys) and tellurocysteine (Tec) mutants, was investigated in silico through a combined classic and quantum mechanics approach to assess the role of the different chalcogens. To perform this analysis, new parameters for selenocysteine (Sec) and tellurocysteine (Tec) were accurately derived for the AMBER ff14SB force field. The oxidation represents the initial step of the antioxidant activity of GPx, which catalyzes the reduction of H O and organic hydroperoxides by glutathione (GSH). A mechanism involving a charge-separation intermediate is feasible for the Cys and Sec enzymes, leading from the initial thiol/selenol form to sulfenic/selenenic acid, whereas for the Tec mutant a direct oxidation pathway is proposed. Activation strain analyses, performed for Cys-GPx and Sec-GPx, provided insight into the rate-accelerating effect of selenium as compared to sulfur and the role of specific amino acids other than Cys/Sec that are typically conserved in the catalytic pocket.

摘要

通过经典与量子力学相结合的方法,在计算机上研究了用作模型过氧化物酶硒酶的人磷脂氢过氧化物谷胱甘肽过氧化物酶(GPx4)及其半胱氨酸(Cys)和碲代半胱氨酸(Tec)突变体被H₂O₂氧化的情况,以评估不同硫族元素的作用。为进行此分析,针对AMBER ff14SB力场准确推导了硒代半胱氨酸(Sec)和碲代半胱氨酸(Tec)的新参数。氧化是GPx抗氧化活性的起始步骤,GPx催化谷胱甘肽(GSH)还原H₂O₂和有机氢过氧化物。对于Cys和Sec酶,涉及电荷分离中间体的机制是可行的,从最初的硫醇/硒醇形式转变为亚磺酸/亚硒酸,而对于Tec突变体,提出了直接氧化途径。对Cys-GPx和Sec-GPx进行的活化应变分析,揭示了与硫相比硒的速率加速效应以及催化口袋中除Cys/Sec外通常保守的特定氨基酸的作用。

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