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首页> 外文期刊>Nature Communications >Chemical reaction mechanisms in solution from brute force computational Arrhenius plots
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Chemical reaction mechanisms in solution from brute force computational Arrhenius plots

机译:蛮力计算的Arrhenius图在溶液中的化学反应机理

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Decomposition of activation free energies of chemical reactions, into enthalpic and entropic components, can provide invaluable signatures of mechanistic pathways both in solution and in enzymes. Owing to the large number of degrees of freedom involved in such wcondensed-phase reactions, the extensive configurational sampling needed for reliable entropy estimates is still beyond the scope of quantum chemical calculations. Here we show, for the hydrolytic deamination of cytidine and dihydrocytidine in water, how direct computer simulations of the temperature dependence of free energy profiles can be used to extract very accurate thermodynamic activation parameters. The simulations are based on empirical valence bond models, and we demonstrate that the energetics obtained is insensitive to whether these are calibrated by quantum mechanical calculations or experimental data. The thermodynamic activation parameters are in remarkable agreement with experiment results and allow discrimination among alternative mechanisms, as well as rationalization of their different activation enthalpies and entropies.
机译:化学反应的活化自由能分解成焓和熵的成分,可以为溶液和酶中的机理途径提供宝贵的信息。由于此类凝聚相反应涉及大量的自由度,因此可靠的熵估计所需的大量配置采样仍然超出了量子化学计算的范围。在这里,我们显示了对于水中的胞苷和二氢胞苷的水解脱氨作用,如何利用自由能曲线的温度依赖性的直接计算机模拟来提取非常精确的热力学活化参数。该模拟基于经验价键模型,我们证明所获得的能量对通过量子力学计算或实验数据进行校准不敏感。热力学活化参数与实验结果非常吻合,可以区分其他机制,并合理化其不同的活化焓和熵。

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