首页> 外文期刊>Journal of chemical theory and computation: JCTC >Computational Prediction of Molecular Hydration Entropy with Hybrid Scaled Particle Theory and Free-Energy Perturbation Method
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Computational Prediction of Molecular Hydration Entropy with Hybrid Scaled Particle Theory and Free-Energy Perturbation Method

机译:混合尺度粒子理论和自由能摄动法的分子水合熵计算预测

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摘要

Despite the importance of the knowledge of molecular hydration entropy (Delta S-hyd) in chemical and biological processes, the exact calculation of Delta S-hyd is very difficult, because of the complexity in solute-water interactions. Although free-energy perturbation (FEP) methods have been employed quite widely in the literature, the poor convergent behavior of the van der Waals interaction term in the potential function limited the accuracy and robustness. In this study, we propose a new method for estimating Delta S-hyd by means of combining the FEP approach and the scaled particle theory (or information theory) to separately calculate the electrostatic solute- water interaction term (Delta S-elec) and the hydrophobic contribution approximated by the cavity formation entropy (Delta S-cav), respectively. Decomposition of Delta S-hyd into Delta S-cav and Delta S-elec terms is found to be very effective with a substantial accuracy enhancement in Delta S-hyd estimation, when compared to the conventional full PEP calculations. Delta S-cav appears to dominate over Delta S-elec in magnitude, even in the case of polar solutes, implying that the major contribution to the entropic cost for hydration comes from the formation of a solvent-excluded volume. Our hybrid scaled particle theory and PEP method is thus found to enhance the accuracy of Delta S-hyd prediction by effectively complementing the conventional full PEP method.
机译:尽管了解分子水合熵(Delta S-hyd)在化学和生物过程中的重要性,但由于溶质与水相互作用的复杂性,很难精确计算Delta S-hyd。尽管自由能扰动(FEP)方法已在文献中广泛使用,但范德华相互作用项在势函数中的较弱收敛行为限制了其准确性和鲁棒性。在这项研究中,我们提出了一种通过结合FEP方法和标度粒子理论(或信息论)分别计算静电溶质-水相互作用项(Delta S-elec)和ΔS-hyd的新方法。分别由空穴形成熵(Delta S-cav)近似的疏水作用。与常规的完整PEP计算相比,发现将Delta S-hyd分解为Delta S-cav和Delta S-elec项非常有效,并且大大提高了Delta S-hyd估计的准确性。即使在极性溶质的情况下,δS-cav似乎也要比Delta S-elec占主导地位,这意味着水合熵成本的主要贡献来自溶剂排除体积的形成。因此,我们的混合标度粒子理论和PEP方法被发现可以有效地补充常规的完整PEP方法,从而提高Delta S-hyd预测的准确性。

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