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Simulation of catalytic water activation in mitochondrial F _1-atpase using a hybrid quantum mechanics/molecular mechanics approach: An alternative role for β-Glu 188

机译:使用混合量子力学/分子力学方法模拟线粒体F _1-atpase中催化水的活化:β-Glu188的替代作用

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The use of quantum mechanics/molecular mechanics simulations to study the free energy landscape of the water activation at the catalytic site of mitochondrial F_1-ATPase affords us insight into the generation of the nucleophile OH- prior to ATP hydrolysis. As a result, the ATP molecule was found to be the final proton acceptor. In the simulated pathway, the transfer of a proton to the nucleotide was not direct but occurred via a second water molecule in a manner similar to the Grotthuss mechanism proposed for proton diffusion. Residue β-Glu 188, previously described as the putative catalytic base, was found to be involved in the stabilization of a transient hydronium ion during water activation. Simulations in the absence of the carboxylate moiety of β-Glu 188 support this role.
机译:使用量子力学/分子力学模拟研究线粒体F_1-ATPase催化位点上水活化的自由能态势,使我们能够洞悉ATP水解之前亲核试剂OH-的生成。结果,发现ATP分子是最终的质子受体。在模拟的途径中,质子向核苷酸的转移不是直接的,而是通过第二个水分子发生的,其方式类似于为质子扩散提出的格罗特斯斯机制。发现残留物β-Glu188(先前描述为推定的催化碱)与水活化过程中瞬态水合氢离子的稳定化有关。在不存在β-Glu188的羧酸根部分的情况下的模拟支持了这一作用。

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