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Oxidation reactivity of zinc–cysteine clusters in metallothionein

机译:金属硫蛋白中锌-半胱氨酸簇的氧化反应性

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Evaluating the reactivity of the metal–thiolate clusters in metallothionein (MT) is a key step in understanding the biological functions of this protein. The effects of the metal clustering and protein environment on the thiolate reactivity with hydrogen peroxide (H_2O_2) were investigated by performing quantum theory calculations with chemical accuracy at two levels of complexity. At the first level, the reactivity with H_2O_2 of a model system ([(Zn)_3(MeS)_9]~(3-), MeS is methanethiolate) of the b domain cluster ofMT was evaluated using density functional theory (DFT) with the mPW1PW91 functional. At the second level of complexity, the protein environment was included in the reactant system and the calculations were performed with the hybrid ONIOM method combining the DFTmPW1PW91 and the semiempirical PM6 levels of theory. In these conditions, the energy barrier for the oxidation of the most reactive terminal thiolate was 21.5 kcal mol~(-1). This is 3 kcal mol~(-1) higher than that calculated for the terminal thiolate in the model system [(Zn)_3(MeS)_9]~(3-) and about 7 kcal mol~(-1) higher than that obtained for the free thiolate. In spite of this rise of the energy barrier induced by the protein environment, the thiolate oxidation by H_2O_2 is confirmed as a possible way for metal release from MT. On the other hand, the results suggest that the antioxidant role of MT in the living cell cannot be as important as that of glutathione (which bears a free thiol).
机译:评估金属硫蛋白(MT)中金属硫醇盐簇的反应性是了解该蛋白质生物学功能的关键步骤。通过在两个复杂程度上以化学精确度进行量子理论计算,研究了金属聚集和蛋白质环境对硫醇盐与过氧化氢(H_2O_2)反应性的影响。在第一级,使用密度泛函理论(DFT)评估了MT的b结构域簇的模型系统([(Zn)_3(MeS)_9]〜(3-),MeS为甲硫醇盐)与H_2O_2的反应性。 mPW1PW91功能正常。在第二个复杂度级别上,蛋白质环境已包含在反应物系统中,并且使用结合DFTmPW1PW91和半经验PM6理论级别的混合ONIOM方法进行了计算。在这些条件下,反应性最高的末端硫醇盐的氧化能垒为21.5 kcal mol〜(-1)。这比模型系统[(Zn)_3(MeS)_9]〜(3-)中末端硫醇盐的计算值高3 kcal mol〜(-1),比模型系统[[Zn] _3(MeS)_9]〜(3-)高约7 kcal mol〜(-1)。获得游离的硫醇盐。尽管由蛋白质环境引起的能垒升高,但仍证实H_2O_2氧化硫醇盐是从MT释放金属的可能途径。另一方面,结果表明MT在活细胞中的抗氧化作用不能像谷胱甘肽(带有游离硫醇)一样重要。

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