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线粒体偕胺肟还原成分催化亚硝酸盐还原过程中的氧自由基和羟基自由基转移

Oxyl and hydroxyl radical transfer in mitochondrial amidoxime reducing component-catalyzed nitrite reduction.

作者信息

Yang Jing, Giles Logan J, Ruppelt Christian, Mendel Ralf R, Bittner Florian, Kirk Martin L

机构信息

†Department of Chemistry and Chemical Biology, The University of New Mexico, MSC03 2060, 1 University of New Mexico, Albuquerque, New Mexico 87131-0001, United States.

‡Department of Plant Biology, Braunschweig University of Technology, Humboldtstrasse 1, 38023 Braunschweig, Germany.

出版信息

J Am Chem Soc. 2015 Apr 29;137(16):5276-9. doi: 10.1021/jacs.5b01112. Epub 2015 Apr 21.

Abstract

A combination of electron paramagnetic resonance (EPR) spectroscopy and computational approaches has provided insight into the nature of the reaction coordinate for the one-electron reduction of nitrite by the mitochondrial amidoxime reducing component (mARC) enzyme. The results show that a paramagnetic Mo(V) species is generated when reduced enzyme is exposed to nitrite, and an analysis of the resulting EPR hyperfine parameters confirms that mARC is remarkably similar to the low-pH form of sulfite oxidase. Two mechanisms for nitrite reduction have been considered. The first shows a modest reaction barrier of 14 kcal/mol for the formation of ·NO from unprotonated nitrite substrate. In marked contrast, protonation of the substrate oxygen proximal to Mo in the Mo(IV)-O-N-O substrate-bound species results in barrierless conversion to products. A fragment orbital analysis reveals a high degree of Mo-O(H)-N-O covalency that provides a π-orbital pathway for one-electron transfer to the substrate and defines orbital constraints on the Mo-substrate geometry for productive catalysis in mARC and other pyranopterin molybdenum enzymes that catalyze this one-electron transformation.

摘要

电子顺磁共振(EPR)光谱学与计算方法相结合,为深入了解线粒体偕胺肟还原成分(mARC)酶将亚硝酸盐单电子还原的反应坐标性质提供了线索。结果表明,当还原态酶暴露于亚硝酸盐时会生成顺磁性的钼(V)物种,对所得EPR超精细参数的分析证实,mARC与低pH形式的亚硫酸盐氧化酶非常相似。已考虑了两种亚硝酸盐还原机制。第一种显示,从未质子化的亚硝酸盐底物形成·NO的反应势垒适中,为14千卡/摩尔。与之形成鲜明对比的是,在与Mo(IV)-O-N-O底物结合的物种中,靠近Mo的底物氧质子化会导致无势垒转化为产物。片段轨道分析揭示了高度的Mo-O(H)-N-O共价性,这为单电子转移到底物提供了一条π轨道途径,并定义了对Mo-底物几何结构的轨道限制,以实现mARC和其他催化这种单电子转化的蝶呤钼酶中的有效催化。

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