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O-O band cleavage and alkane hydroxylation in methane monooxygenase

机译:甲烷单加氧酶的O-O带断裂和烷烃羟基化

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摘要

Several new aspects of the O-O band cleavage and alkane hydroxylation mechanisms have been studied by hybrid density functional theory in this reinvestigation of methane monooxygenase. As concerning key intermediates in these reactions, a new important low-lying state is found, described either as Fe_2(III, V) or as Fe_2(III, IV) O. A fully optimized transition state for O-O band cleavage has been determined. It is suggested that the large difference in optimal size (as determined in gas phase) of the complex, before and after the O-O band cleavage, leads to an additional driving force for the reaction, not considered previously. The strain of the enzyme is estimated to lead to a driving force in the forward direction of about 5 kcal/mol, which could explain some of the pH dependence found in recent experiments. For the hydroxylation reaction, a clean hydrogen abstraction transition state leading to a substrate radical is again found, in contrast to interpretations of radical clock experiments. An explanation, based on new results, is suggested that could account for both the experimental and theoretical results.
机译:在这项甲烷单加氧酶的重新研究中,通过混合密度泛函理论研究了O-O波段裂解和烷烃羟基化机理的几个新方面。关于这些反应中的关键中间体,发现了一个新的重要的低位态,称为Fe_2(III,V)或Fe_2(III,IV)O。已经确定了O-O带断裂的完全优化的过渡态。建议在O-O带断裂之前和之后,配合物的最佳尺寸(由气相确定)的巨大差异导致反应的额外驱动力,这是以前没有考虑的。估计该酶的应变会导致向前驱动力约为5 kcal / mol,这可以解释最近实验中发现的某些pH依赖性。对于羟基化反应,与自由基时钟实验的解释相反,再次发现了导致底物自由基的干净的氢抽象过渡态。建议基于新结果的解释可以解释实验和理论结果。

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