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Peptide Bond Formation Mechanism Catalyzed by Ribosome

机译:核糖体催化肽键形成机理

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摘要

In this paper we present a study of the peptide bond formation reaction catalyzed by ribosome. Different mechanistic proposals have been explored by means of Free Energy Perturbation methods within hybrid QM/MM potentials, where the chemical system has been described by the M06-2X functional and the environment by means of the AMBER force field. According to our results, the most favourable mechanism in the ribosome would proceed through an eight-membered ring transition state, involving a proton shuttle mechanism through the hydroxyl group of the sugar and a water molecule. This transition state is similar to that described for the reaction in solution (J. Am. Chem. Soc. >2013, 135, 8708–8719) but the reaction mechanisms are noticeable different. Our simulations reproduce the experimentally determined catalytic effect of ribosome that can be explained by the different behaviour of the two environments. While the solvent reorganizes during the chemical process involving an entropic penalty, the ribosome is preorganized in the formation of the Michaelis complex and does not suffer important changes along the reaction, dampening the charge redistribution of the chemical system.
机译:在本文中,我们对核糖体催化的肽键形成反应进行了研究。已通过在QM / MM混合势中的自由能摄动方法探索了不同的机制建议,其中化学系统已通过M06-2X功能和环境通过AMBER力场进行了描述。根据我们的结果,核糖体中最有利的机制将通过八元环过渡态进行,其中涉及质子穿梭机制通过糖的羟基和水分子。该过渡态与溶液中反应的过渡态相似(J. Am。Chem。Soc。> 2013 ,135,8708–8719),但反应机理明显不同。我们的模拟再现了实验确定的核糖体催化作用,这可以通过两种环境的不同行为来解释。虽然溶剂在化学过程中会发生重组(包括熵损失),但核糖体会在迈克尔斯络合物的形成中进行预组织,并且在反应过程中不会发生重要变化,从而抑制了化学系统的电荷重新分布。

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