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Tungsten-dependent formaldehyde ferredoxin oxidoreductase: Reaction mechanism from quantum chemical calculations

机译:钨依赖性甲醛铁氧还蛋白氧化还原酶:量子化学计算的反应机理

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摘要

Formaldehyde ferredoxin oxidoreductase from Pyrococcus furiosus is a tungsten-dependent enzyme that catalyzes the oxidation of formaldehyde to formic acid. In the present study, quantum chemical calculations are used to elucidate the reaction mechanism of this enzyme. Several possible mechanistic scenarios are investigated with a large model of the active site designed on the basis of the X-ray crystal structure of the native enzyme. Based on the calculations, we propose a new mechanism in which the formaldehyde substrate binds directly to the tungsten ion. W~(VI)=O then performs a nucleophilic attack on the formaldehyde carbon to form a tetrahedral intermediate. In the second step, which is calculated to be rate limiting, a proton is transferred to the second-shell Glu308 residue, coupled with a two-electron reduction of the tungsten ion. The calculated barriers for the mechanism are energetically very feasible and in relatively good agreement with experimental rate constants. Three other second-shell mechanisms, including one previously proposed based on experimental findings, are considered but ruled out because of their high barriers.
机译:来自激烈热球菌的甲醛铁氧还蛋白氧化还原酶是一种钨依赖性酶,可催化甲醛氧化成甲酸。在本研究中,量子化学计算用于阐明该酶的反应机理。使用基于天然酶的X射线晶体结构设计的活性位点的大型模型,研究了几种可能的机理情况。基于这些计算,我们提出了一种新的机理,其中甲醛底物直接与钨离子结合。然后,W(VI)= O对甲醛碳进行亲核攻击以形成四面体中间体。在被计算为限速的第二步中,质子被转移到第二壳Glu308残基上,同时钨离子进行双电子还原。该机制的计算壁垒在能量上非常可行,并且与实验速率常数相对较好。考虑了其他三个第二层机制,包括先前基于实验发现提出的第二个机制,但由于其较高的壁垒而被排除在外。

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