【2h】

Effects of geometry and chemistry on hydrophobic solvation

机译:几何形状和化学性质对疏水溶剂化的影响

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摘要

Inserting an uncharged van der Waals (vdw) cavity into water disrupts the distribution of water and creates attractive dispersion interactions between the solvent and solute. This free-energy change is the hydrophobic solvation energy (ΔGvdw). Frequently, it is assumed to be linear in the solvent-accessible surface area, with a positive surface tension (γ) that is independent of the properties of the molecule. However, we found that γ for a set of alkanes differed from that for four configurations of decaalanine, and γ = −5 was negative for the decaalanines. These findings conflict with the notion that ΔGvdw favors smaller A. We broke ΔGvdw into the free energy required to exclude water from the vdw cavity (ΔGrep) and the free energy of forming the attractive interactions between the solute and solvent (ΔGatt) and found that γ < 0 for the decaalanines because −γatt > γrep and γatt < 0. Additionally, γatt and γrep for the alkanes differed from those for the decaalanines, implying that none of ΔGatt, ΔGrep, and ΔGvdw can be computed with a constant surface tension. We also showed that ΔGatt could not be computed from either the initial or final water distributions, implying that this quantity is more difficult to compute than is sometimes assumed. Finally, we showed that each atom’s contribution to γrep depended on multibody interactions with its surrounding atoms, implying that these contributions are not additive. These findings call into question some hydrophobic models.
机译:将不带电的范德华(vdw)腔插入水中会破坏水的分布,并在溶剂和溶质之间产生有吸引力的分散作用。这种自由能的变化是疏水溶剂化能(ΔGvdw)。通常,它在溶剂可及的表面积中呈线性,其正表面张力(γ)与分子的性质无关。但是,我们发现一组烷烃的γ与四个十氢化萘构型的γ不同,并且γ= -5十氢化丙氨酸为负。这些发现与ΔGvdw偏爱较小的A的观点相矛盾。我们将ΔGvdw分解为将水从vdw腔中排除所需的自由能(ΔGrep)和形成溶质与溶剂之间有吸引力的相互作用的自由能(ΔGatt),发现因为-γatt>γrep和γatt<0,所以十丙氨酸的γ<0。此外,烷烃的γatt和γrep与十丙氨酸的烷烃不同,这意味着在恒定的表面张力下无法计算ΔGatt,ΔGrep和ΔGvdw。我们还表明,无法从初始或最终水分布中计算出ΔGatt,这意味着该数量比有时所假设的更难计算。最后,我们证明了每个原子对γrep的贡献取决于与其周围原子的多体相互作用,这意味着这些贡献不是加成的。这些发现使一些疏水模型受到质疑。

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