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关于盐诱导的成对及多体疏水相互作用的稳定性

On the salt-induced stabilization of pair and many-body hydrophobic interactions.

作者信息

Ghosh Tuhin, Kalra Amrit, Garde Shekhar

机构信息

The Howard P. Isermann Department of Chemical & Biological Engineering, Rensselaer Polytechnic Institute, Troy, New York 12180, USA.

出版信息

J Phys Chem B. 2005 Jan 13;109(1):642-51. doi: 10.1021/jp0475638.

Abstract

Salting-out of hydrophobic solutes in aqueous salt solutions and their relevance to salt effects on biophysical phenomena are now well appreciated. Although salt effects on hydrophobic transfer have been well studied, to our knowledge, no quantitative molecular simulation study of salt-induced strengthening of hydrophobic interactions has yet been reported. Here we present quantitative characterization of salt-induced strengthening of hydrophobic interactions at the molecular and nanoscopic length scales through molecular dynamics simulations. Specifically, we quantify the effect of NaCl on the potential of mean force between molecular hydrophobic solutes (methanes) and on conformational equilibria of a 25-mer hydrophobic polymer that efficiently samples ensembles of compact and extended states in water. In both cases, we observe relative stabilization of compact conformations that is accompanied by a clear depletion of salt density (preferential exclusion) and a slight enhancement of water density (preferential hydration) in the solute vicinity. We show that the structural details of salt exclusion can be related to the salt-induced free energy changes using preferential interaction coefficients. We also test the applicability of surface-area-based models to describe the salt-induced free energy changes. These models provide a useful empirical description that can be used to predict the effects of salt on conformational equilibria of hydrophobic solutes. However, we find that the effective increase in the surface tension of the solute-aqueous solution interface depends on the type and concentration of salt as well as the length-scale (i.e., molecular vs nanoscopic) of the conformational change. These calculations underscore the utility of simulation studies to connect quantitatively structural details at the molecular level (described by preferential hydration/exclusion) to macroscopic solvation thermodynamics. The hydrophobic polymer also provides a useful model for studies of effect of thermodynamic variables (P, T, salt/additives) on many-body hydrophobic interactions at nanometer length scales.

摘要

疏水性溶质在盐水溶液中的盐析作用及其与盐对生物物理现象影响的相关性现已得到充分认识。尽管盐对疏水转移的影响已得到充分研究,但据我们所知,尚未有关于盐诱导疏水相互作用增强的定量分子模拟研究报道。在此,我们通过分子动力学模拟,在分子和纳米尺度上对盐诱导疏水相互作用的增强进行了定量表征。具体而言,我们量化了NaCl对分子疏水溶质(甲烷)之间平均力势的影响,以及对一种25聚体疏水聚合物构象平衡的影响,该聚合物能有效地采样水中紧密和伸展状态的集合。在这两种情况下,我们都观察到紧密构象的相对稳定,同时溶质附近盐密度明显降低(优先排斥),水密度略有增加(优先水合)。我们表明,使用优先相互作用系数,盐排斥的结构细节可以与盐诱导的自由能变化相关联。我们还测试了基于表面积的模型描述盐诱导自由能变化的适用性。这些模型提供了一种有用的经验描述,可用于预测盐对疏水溶质构象平衡的影响。然而,我们发现溶质 - 水溶液界面表面张力的有效增加取决于盐的类型和浓度以及构象变化的长度尺度(即分子尺度与纳米尺度)。这些计算强调了模拟研究在将分子水平上的定量结构细节(由优先水合/排斥描述)与宏观溶剂化热力学联系起来方面的实用性。这种疏水聚合物还为研究热力学变量(P、T、盐/添加剂)对纳米长度尺度上多体疏水相互作用的影响提供了一个有用的模型。

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