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Low-temperature biological activation of methane: structure, function and molecular interactions of soluble and particulate methane monooxygenases

机译:甲烷的低温生物活化:可溶性和颗粒甲烷单氧基酶的结构,功能和分子相互作用

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摘要

Mechanistic aspects of oxidation of methane to methanol by methanotrophic bacteria via methane monooxygenase (MMO) is still not well understood. Elucidating how various molecules pertinent to methane oxidation interact with each other at the MMO active site offers critical insights on low-temperature activation of methane, which is one of the greatest technical challenges in hydrocarbon chemistry. In this review, most recent contributions to the area are analyzed comparing soluble (sMMO) and particulate (pMMO) forms. Initially, the taxonomical, morphological and physiological differences of different methanotrophs are discussed. Then, the structural and functional differences of sMMO and pMMO are analyzed while considering substrate/product-cofactor-active site interactions. A docking analysis was performed using Autodock Vina to uncover interactions between cofactors and corresponding enzymes. With natural gas becoming a significant contributor to the energy continuum, this literature analysis and molecular simulations conducted brings new insights to low-temperature activation of methane.
机译:通过甲烷单氧基酶(MMO)通过甲蛋白酶细菌(MMO)的甲烷氧化对甲醇的机械方面仍未得到很好的理解。阐明与MMO活性位点相互作用的各种分子彼此相互作用,对甲烷的低温活化相互作用,这是碳氢化合物化学中最大的技术挑战之一。在本文中,分析了对该区域的最新贡献进行了比较可溶性(SMMO)和颗粒(PMMO)形式。最初,讨论了不同甲虫萎缩的分类学,形态学和生理差异。然后,在考虑基板/产品 - 辅因子 - 活性位点相互作用的同时分析SMMO和PMMO的结构和功能差异。使用Autodock Vina进行对接分析,以发现辅因子和相应酶之间的相互作用。由于天然气成为能源连续体的重要因素,这种文献分析和分子模拟对甲烷的低温活化引起了新的见解。

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