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水的结构与离液序列高变性:它们的用途、滥用及生物学意义

Water structure and chaotropicity: their uses, abuses and biological implications.

作者信息

Ball Philip, Hallsworth John E

机构信息

18 Hillcourt Road, East Dulwich, London SE22 0PE, UK.

出版信息

Phys Chem Chem Phys. 2015 Apr 7;17(13):8297-305. doi: 10.1039/c4cp04564e. Epub 2015 Jan 28.

Abstract

The concept of "water structure" has been invoked to explain all manner of aqueous phenomena. Here we look at the origins of this tendency to understand solute hydration in terms of structural changes in bulk water, and consider the validity of one particular example: the classification of small solutes as chaotropic or kosmotropic, and the putative relation of this terminology to notions of structure-making and structure-breaking in the solvent. We doubt whether complex phenomena such as Hofmeister and osmolyte effects on macromolecules can be understood simply on the basis of a change in solvent structure. Rather, we argue that chaotropicity, if understood in the original sense, arises from the activities that solutes exert on macromolecular systems, as well as from deviations of solvation water from bulk-like behaviour. If applied judiciously, chaotropicity remains a potent, biologically pertinent parameter useful for classifying and understanding solution phenomena in all types of living system.

摘要

“水结构”这一概念已被用于解释各种各样的水相现象。在此,我们探讨这种倾向于根据大量水体结构变化来理解溶质水合作用的起源,并考虑一个特定例子的有效性:将小分子溶质分类为离液剂或促溶剂,以及该术语与溶剂中结构形成和结构破坏概念的假定关系。我们怀疑诸如霍夫迈斯特效应和渗透剂对大分子的影响等复杂现象是否能仅仅基于溶剂结构的变化来理解。相反,我们认为,如果从其原始意义上理解,离液性源于溶质对大分子系统施加的活性,以及溶剂化水与类似大量水体行为的偏差。如果明智地应用,离液性仍然是一个有力的、与生物学相关的参数,有助于对所有类型生命系统中的溶液现象进行分类和理解。

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