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[NiFe]氢化酶中氢的吸收机制:模型化合物的第一性原理分子动力学研究。

The mechanism of hydrogen uptake in [NiFe] hydrogenase: first-principles molecular dynamics investigation of a model compound.

机构信息

LCC-Laboratory of Coordination Chemistry, CNRS-National Center for Scientific Research, 205 route de Narbonne, 31077 Toulouse, France.

出版信息

J Biol Inorg Chem. 2012 Jan;17(1):149-64. doi: 10.1007/s00775-011-0838-z. Epub 2011 Sep 3.

Abstract

The recent discovery of a model compounds of [NiFe] hydrogenase that catalyzes the heterolytic cleavage of the H(2) molecule into a proton and a stable hydride in water solution under room conditions opened up the possibility to understand the mechanism of H(2) uptake by this peculiar class of enzymes. The simplest model compound belongs to the class of NiRu bimetallic cationic complexes mimicking, in water solution and at room conditions, the hydrogenase active site. By using first-principles molecular dynamics computer simulations, in the Car-Parrinello scheme, we investigated models including the water solvent and nitrate counterions. Several simulations, starting from different initial configurations, provided information on the first step of the H(2) cleavage: (1) the pathway of H(2) approach towards the active site; (2) the role of the ruthenium-bonded water molecule in providing a base that extracts the proton from the activated H(2) molecule; (3) the minor role of Ni in activating the H(2) molecule and its role in stabilizing the hydride produced.

摘要

最近发现了一种 [NiFe] 氢化酶的模型化合物,该模型化合物在室温条件下的水溶液中催化 H(2) 分子异裂为质子和稳定的氢化物,这为理解该特殊类酶对 H(2) 的摄取机制开辟了可能性。最简单的模型化合物属于 NiRu 双金属阳离子配合物类,在水溶液中和室温条件下模拟氢化酶活性位点。我们使用第一性原理分子动力学计算机模拟(Car-Parrinello 方案)研究了包括水溶剂和硝酸盐反离子的模型。从不同的初始构型开始的几次模拟提供了关于 H(2) 裂解第一步的信息:(1)H(2) 接近活性位点的途径;(2)与钌键合的水分子在提供从活化的 H(2) 分子中提取质子的碱方面的作用;(3)Ni 在活化 H(2) 分子方面的次要作用及其在稳定所产生的氢化物方面的作用。

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