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首页> 外文期刊>Angewandte Chemie >Predicting the Limit of Intramolecular Hydrogen Bonding with Classical Molecular Dynamics
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Predicting the Limit of Intramolecular Hydrogen Bonding with Classical Molecular Dynamics

机译:预测古典分子动力学的分子内氢键极限

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摘要

The energetics of intramolecular recognition processes are governed by the balance of pre-organization and flexibility, which is often difficult to measure and hard to predict. Using classical MD simulations, we predict and quantify the effective strength of intramolecular hydrogen bonds between donor and acceptor sites separated by a variable alkyl linker in several solvents and crowded solutions. The balance of entropic and enthalpic contributions poses a solvent-dependent limit to the occurrence of intramolecular Hbonding. Still, free energies show a constant offset among different solvents with, for example, a 13 kJ mol(-1)difference between water and chloroform. Molecular crowding shows little effect on the thermodynamic equilibrium, but induces variations on the H-bond kinetics. The results are in quantitative agreement with experiments in chloroform and showcase a general strategy to investigate molecular interactions in different environments, extending the limits of current experiments towards the prospective prediction of H-bond interactions in a variety of contexts.
机译:分子内识别过程的能量学通过预先进行的余额和灵活性的平衡,这通常很难衡量和难以预测。使用经典的MD模拟,我们预测并量化在几种溶剂和拥挤的溶液中通过可变烷基接头分离的供体和受体位点之间的分子内氢键的有效强度。熵和焓贡献的平衡对分子内Hbonding的发生构成了依赖性限制。尽管如此,自由能量在不同的溶剂中显示出恒定的偏移,例如,水和氯仿之间的13kJ摩尔(-1)差异。分子挤在热力学平衡的影响很小,但诱导H键动力学的变化。结果是与氯仿实验的定量协议,并展示了研究不同环境中的分子相互作用的一般策略,将目前实验的限制延伸到各种背景下的H键相互作用的前瞻性预测。

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