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单核非血红素双氧桥铁(IV)配合物在水溶液中的稳定性和过氧化氢酶样活性。

Stability and Catalase-Like Activity of a Mononuclear Non-Heme Oxoiron(IV) Complex in Aqueous Solution.

机构信息

Department of Chemistry, University of Pannonia, 8201 Veszprém, Hungary.

出版信息

Molecules. 2019 Sep 5;24(18):3236. doi: 10.3390/molecules24183236.

Abstract

Heme-type catalase is a class of oxidoreductase enzymes responsible for the biological defense against oxidative damage of cellular components caused by hydrogen peroxide, where metal-oxo species are proposed as reactive intermediates. To get more insight into the mechanism of this curious reaction a non-heme structural and functional model was carried out by the use of a mononuclear complex Fe(N4Py*)(CHCN) (N4Py* = ,-bis(2-pyridylmethyl)- 1,2-di(2-pyridyl)ethylamine) as a catalyst, where the possible reactive intermediates, high-valent Fe=O and Fe-OOH are known and spectroscopically well characterized. The kinetics of the dismutation of HO into O and HO was investigated in buffered water, where the reactivity of the catalyst was markedly influenced by the pH, and it revealed Michaelis-Menten behavior with K = 1.39 M, k = 33 s and k(k/K) = 23.9 Ms at pH 9.5. A mononuclear [(N4Py)Fe=O] as a possible intermediate was also prepared, and the pH dependence of its stability and reactivity in aqueous solution against HO was also investigated. Based on detailed kinetic, and mechanistic studies (pH dependence, solvent isotope effect (SIE) of 6.2 and the saturation kinetics for the initial rates versus the HO concentration with K = 18 mM) lead to the conclusion that the rate-determining step in these reactions above involves hydrogen-atom transfer between the iron-bound substrate and the Fe(IV)-oxo species.

摘要

血红素型过氧化氢酶是一类氧化还原酶,负责生物防御细胞成分因过氧化氢而受到的氧化损伤,其中金属氧物种被认为是反应中间体。为了更深入地了解这一奇特反应的机制,使用单核配合物 Fe(N4Py*)(CHCN)(N4Py* =,-双(2-吡啶基甲基)-1,2-二(2-吡啶基)乙二胺)作为催化剂进行了非血红素结构和功能模型研究,其中已知并通过光谱学很好地表征了可能的反应中间体、高价态 Fe=O 和 Fe-OOH。在缓冲水中研究了 HO 歧化为 O 和 HO 的反应动力学,其中催化剂的反应性明显受到 pH 的影响,并在 pH 9.5 时表现出米氏-门坦行为,K = 1.39 M,k = 33 s 和 k(k/K) = 23.9 Ms。还制备了单核 [(N4Py)Fe=O] 作为可能的中间体,并研究了其在水溶液中的稳定性和对 HO 的反应性随 pH 的变化。基于详细的动力学和机制研究(pH 依赖性、溶剂同位素效应(SIE)为 6.2 以及初始速率对 HO 浓度的饱和动力学,K = 18 mM)得出结论,这些反应中的速控步骤涉及铁结合底物和 Fe(IV)-氧物种之间的氢原子转移。

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