Methane monooxygenase: functionalizing methane at iron and copper.

Matthew H Sazinsky, Stephen J Lippard
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引用次数: 52

Abstract

Methane monooxygenases (MMOs) catalyze the conversion of methane to methanol as the first committed step in the assimilation of this hydrocarbon into biomass and energy by methanotrophs, thus playing a significant role in the biogeochemistry of this potent greenhouse gas. Two distinct enzymes, a copper-dependent membrane protein, particulate methane monooxygenase (pMMO), and an iron-dependent cytosolic protein, soluble methane monooxygenase (sMMO), carry out this transformation using large protein scaffolds that help to facilitate the timely transport of hydrocarbon, O₂, proton, and electron substrates to buried dimetallic active sites. For both enzymes, reaction of the reduced metal centers with O₂leads to intermediates that activate the relatively inert C-H bonds of hydrocarbons to yield oxidized products. Among synthetic and biological catalysts, MMOs are unique because they are the only ones known to hydroxylate methane at ambient temperatures. As a need for new industrial catalysts and green chemical transformations increases, understanding how the different MMO metal centers efficiently accomplish this challenging chemistry has become the focus of intense study. This chapter examines current understanding of the sMMO and pMMO protein structures, their methods for substrate channeling, and mechanisms for the dimetallic activation of O₂and C-H bonds.

甲烷单加氧酶:使甲烷在铁和铜上功能化。
甲烷单加氧酶(MMOs)催化甲烷转化为甲醇,是甲烷氧化菌将甲烷转化为生物质和能源的第一步,因此在这种强效温室气体的生物地球化学中起着重要作用。两种不同的酶,铜依赖的膜蛋白,颗粒甲烷单氧化酶(pMMO)和铁依赖的胞质蛋白,可溶性甲烷单氧化酶(sMMO),利用大型蛋白质支架进行这种转化,有助于促进碳氢化合物,O₂,质子和电子底物及时运输到埋在地下的双金属活性位点。对于这两种酶,还原的金属中心与O₂反应产生中间体,激活相对惰性的碳氢化合物的C-H键,生成氧化产物。在合成和生物催化剂中,mmo是独一无二的,因为它们是唯一已知的在环境温度下羟化甲烷的催化剂。随着对新型工业催化剂和绿色化学转化需求的增加,了解不同的MMO金属中心如何有效地完成这一具有挑战性的化学反应已成为激烈研究的焦点。本章考察了目前对sMMO和pMMO蛋白结构的理解,它们的底物通道方法,以及O₂和C-H键的双金属活化机制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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