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Mechanism of tungsten-dependent acetylene hydratase from quantum chemical calculations

机译:量子化学计算的钨依赖性乙炔水合酶机理

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摘要

Acetylene hydratase is a tungsten-dependent enzyme that catalyzes the nonredox hydration of acetylene to acetaldehyde. Density functional theory calculations are used to elucidate the reaction mechanism of this enzyme with a large model of the active site devised on the basis of the native X-ray crystal structure. Based on the calculations, we propose a new mechanism in which the acetylene substrate first displaces the W-coordinated water molecule, and then undergoes a nucleophilic attack by the water molecule assisted by an ionized Asp13 residue at the active site. This is followed by proton transfer from Asp13 to the newly formed vinyl anion intermediate. In the subsequent isomerization, Asp13 shuttles a proton from the hydroxyl group of the vinyl alcohol to the α-carbon. Asp13 is thus a key player in the mechanism, but also W is directly involved in the reaction by binding and activating acetylene and providing electrostatic stabilization to the transition states and intermediates. Several other mechanisms are also considered but the energetic barriers are found to be very high, ruling out these possibilities.
机译:乙炔水合酶是一种钨依赖性酶,可催化乙炔的非氧化还原水合为乙醛。密度泛函理论计算用于阐明这种酶与基于天然X射线晶体结构设计的大量活性位点模型的反应机理。基于这些计算,我们提出了一种新的机理,其中乙炔底物首先置换W配位的水分子,然后在活性位点通过电离的Asp13残基辅助水分子进行亲核攻击。随后质子从Asp13转移到新形成的乙烯基阴离子中间体。在随后的异构化中,Asp13将质子从乙烯醇的羟基转运到α-碳上。因此,Asp13是该机制的关键参与者,但W也通过结合和活化乙炔并为过渡态和中间体提供静电稳定作用而直接参与反应。还考虑了其​​他几种机制,但发现能量障碍很高,排除了这些可能性。

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