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水溶液中ATP水解的量子力学/分子力学研究

QM/MM investigation of ATP hydrolysis in aqueous solution.

作者信息

Wang Cui, Huang Wenting, Liao Jie-Lou

机构信息

Department of Chemical Physics, University of Science and Technology of China , 96 Jinzhai Road, 230026 Hefei, Anhui Province, People's Republic of China.

出版信息

J Phys Chem B. 2015 Mar 5;119(9):3720-6. doi: 10.1021/jp512960e. Epub 2015 Feb 19.

DOI:10.1021/jp512960e
PMID:25658024
Abstract

Adenosine-5'-triphosphate (ATP) hydrolysis represents a most important reaction in biology. Despite extensive research efforts, the mechanism for ATP hydrolysis in aqueous solution still remains under debate. Previous theoretical studies often predefined reaction coordinates to characterize the mechanism for ATP hydrolysis in water with Mg(2+) by evaluating free energy profiles through these preassumed reaction paths. In the present work, a nudged elastic band method is applied to identify the minimum energy path calculated with a hybrid quantum mechanics and molecular mechanics approach. Along the reaction path, the free energy profile was obtained to have a single transition state and the activation energy of 32.5 kcal/mol. This transition state bears a four-centered structure that describes a concerted nature of the reaction. In the More-O'Ferrall-Jencks diagram, the results show that the reaction proceeds through a concerted path before the system reaches the transition state and along an associative path after the transition state. In addition, the calculated reaction free energy is -7.0 kcal/mol, in good agreement with experiment, capturing the exothermic feature of MgATP(2-) hydrolysis in aqueous solution, whereas the reaction was often shown to be endothermic in the previous theoretical studies. As Mg(2+) is required for ATP hydrolysis in cells, its role in the reaction is also elucidated.

摘要

腺苷 - 5'-三磷酸(ATP)水解是生物学中最重要的反应之一。尽管进行了广泛的研究,但水溶液中ATP水解的机制仍存在争议。以往的理论研究通常预先设定反应坐标,通过这些预先假定的反应路径评估自由能分布,以表征Mg(2+)存在时水中ATP水解的机制。在本研究中,采用推挤弹性带方法来确定用混合量子力学和分子力学方法计算的最小能量路径。沿着反应路径,获得的自由能分布具有单个过渡态,活化能为32.5千卡/摩尔。该过渡态具有四中心结构,描述了反应的协同性质。在莫尔 - 奥费拉尔 - 詹克斯图中,结果表明反应在系统达到过渡态之前通过协同路径进行,在过渡态之后沿着缔合路径进行。此外,计算得到的反应自由能为 -7.0千卡/摩尔,与实验结果吻合良好,捕捉到了水溶液中MgATP(2-)水解的放热特征,而在以往的理论研究中该反应通常显示为吸热反应。由于细胞内ATP水解需要Mg(2+),其在反应中的作用也得到了阐明。

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