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通过大规模的量子力学/分子力学模拟结合溶液理论揭示了电子和溶剂化效应对 ATP 水解的剧烈补偿。

Drastic Compensation of Electronic and Solvation Effects on ATP Hydrolysis Revealed through Large-Scale QM/MM Simulations Combined with a Theory of Solutions.

机构信息

Department of Chemistry, Graduate School of Science, Tohoku University , Sendai, Miyagi 980-8578, Japan.

Department of Chemical Engineering, Graduate School of Engineering Science, Osaka University , Toyonaka, Osaka 560-8531, Japan.

出版信息

J Phys Chem B. 2017 Mar 16;121(10):2279-2287. doi: 10.1021/acs.jpcb.7b00637. Epub 2017 Mar 7.

DOI:10.1021/acs.jpcb.7b00637
PMID:28222598
Abstract

Hydrolysis of adenosine triphosphate (ATP) is the "energy source" for a variety of biochemical processes. In the present work, we address key features of ATP hydrolysis: the relatively moderate value (about -10 kcal/mol) of the standard free energy, ΔG, of reaction and the insensitivity of ΔG to the number of excess electrons on ATP. We conducted quantum mechanical/molecular mechanical simulation combined with the energy-representation theory of solutions to analyze the electronic-state and solvation contributions to ΔG. It was revealed that the electronic-state contribution in ΔG is largely negative (favorable) upon hydrolysis, due to the reduction of electrostatic repulsion accompanying the breakage of the P-O bond. In contrast, the solvation effect was found to be strongly more favorable on the reactant side. Thus, we showed that a drastic compensation of the two opposite effects takes place, leading to the modest value of ΔG at each number of excess electrons examined. The computational analyses were also conducted for pyrophosphate ions (PPi), and the parallelism between the ATP and PPi hydrolyses was confirmed. Classical molecular dynamics simulation was further carried out to discuss the effect of the solvent environment; the insensitivity of ΔG to the number of excess electrons was seen to hold in solvent water and ethanol.

摘要

三磷酸腺苷(ATP)的水解是各种生化过程的“能量来源”。在本工作中,我们研究了 ATP 水解的关键特征:反应的标准自由能ΔG 值相对适中(约-10 千卡/摩尔),以及 ΔG 对 ATP 上多余电子数的不敏感性。我们进行了量子力学/分子力学模拟,并结合溶液的能量表示理论来分析电子态和溶剂化对ΔG 的贡献。结果表明,水解过程中,由于 P-O 键断裂伴随的静电排斥的减少,电子态贡献在ΔG 中主要为负(有利)。相比之下,溶剂化效应在反应物侧被发现具有强烈的优势。因此,我们表明,这两种相反效应发生了剧烈的补偿,导致在所研究的每个多余电子数下ΔG 的值适中。还对焦磷酸盐离子(PPi)进行了计算分析,并证实了 ATP 和 PPi 水解之间的平行性。进一步进行了经典分子动力学模拟以讨论溶剂环境的影响;在溶剂水和乙醇中,ΔG 对多余电子数的不敏感性得以保持。

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