首页> 外文期刊>Journal of the American Chemical Society >Possible Mechanism of Proton Transfer through Peptide Groups in the H-Pathway of the Bovine Cytochrome c Oxidase
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Possible Mechanism of Proton Transfer through Peptide Groups in the H-Pathway of the Bovine Cytochrome c Oxidase

机译:质子通过牛细胞色素c氧化酶H通路中的肽基转移的可能机制。

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摘要

The peptide group connecting Tyr440 and Ser441 of the bovine cytochrome coxidase is involved in a recently proposed proton-transfer path (H-path) where, at variance with other pathways (D- and K-paths), a usual hydrogen-bond network is interrupted, thus making this proton propagation rather unconventional. Our density-functional based molecular dynamics simulations show that, despite this anomaly and provided that a proton can reach a nearby water, a multistep proton-transfer pathway can become a viable pathway for such a reaction: A proton is initially transferred to the carbonyl oxygen of a keto form of the Tyr440-Ser441 peptide group [-CO-NH-], producing an imidic acid [-C(OH)-NH-] as a metastable state; the amide proton of the imidic acid is then transferred, spontaneously to the deprotonated carboxyl group of the Asp51 side chain, leading to the formation of an enol form [-C(OH)=N-] of the Tyr440-Ser441 peptide group. Then a subsequent enol-to-keto tautomerization occurs via a double proton-transfer path realized in the two adjacent Tyr440-Ser441 and Ser441-Asp442 peptide groups. An analysis of this multistep proton-transfer pathway shows that each elementary process occurs through the shortest distance, no permanent conformational changes are induced, thus preserving the X-ray crystal structure, and the reaction path is characterized by a reasonable activation barrier.
机译:连接牛细胞色素氧化酶的Tyr440和Ser441的肽基团参与了最近提出的质子转移途径(H途径),其中与其他途径(D和K途径)不同,通常的氢键网络是中断,从而使这种质子的传播相当不常规。我们基于密度泛函的分子动力学模拟表明,尽管存在异常,并且质子可以到达附近的水,但多步质子转移途径可以成为此类反应的可行途径:质子最初转移至羰基氧Tyr440-Ser441肽基团[-CO-NH-]的酮基形式,产生亚稳酸[-C(OH)-NH-];然后将亚氨酸的酰胺质子自发转移到Asp51侧链的去质子化的羧基上,从而导致Tyr440-Ser441肽基的烯醇形式[-C(OH)= N-]形成。然后,通过在两个相邻的Tyr440-Ser441和Ser441-Asp442肽组中实现的双质子转移路径发生随后的烯醇-酮互变异构。对这种多步质子转移路径的分析表明,每个基本过程都在最短的距离内发生,不会引起永久的构象变化,从而保留了X射线晶体结构,并且反应路径的特征是合理的活化势垒。

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