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疏水环境对水的假设液-液临界点的影响。

Effect of hydrophobic environments on the hypothesized liquid-liquid critical point of water.

作者信息

Strekalova Elena G, Corradini Dario, Mazza Marco G, Buldyrev Sergey V, Gallo Paola, Franzese Giancarlo, Stanley H Eugene

机构信息

Center for Polymer Studies and Department of Physics, Boston University, Boston, MA 02215 USA.

出版信息

J Biol Phys. 2012 Jan;38(1):97-111. doi: 10.1007/s10867-011-9241-9. Epub 2011 Nov 11.

Abstract

The complex behavior of liquid water, along with its anomalies and their crucial role in the existence of life, continue to attract the attention of researchers. The anomalous behavior of water is more pronounced at subfreezing temperatures and numerous theoretical and experimental studies are directed towards developing a coherent thermodynamic and dynamic framework for understanding supercooled water. The existence of a liquid-liquid critical point in the deep supercooled region has been related to the anomalous behavior of water. However, the experimental study of supercooled water at very low temperatures is hampered by the homogeneous nucleation of the crystal. Recently, water confined in nanoscopic structures or in solutions has attracted interest because nucleation can be delayed. These systems have a tremendous relevance also for current biological advances; e.g., supercooled water is often confined in cell membranes and acts as a solvent for biological molecules. In particular, considerable attention has been recently devoted to understanding hydrophobic interactions or the behavior of water in the presence of apolar interfaces due to their fundamental role in self-assembly of micelles, membrane formation and protein folding. This article reviews and compares two very recent computational works aimed at elucidating the changes in the thermodynamic behavior in the supercooled region and the liquid-liquid critical point phenomenon for water in contact with hydrophobic environments. The results are also compared to previous reports for water in hydrophobic environments.

摘要

液态水的复杂行为,连同其异常现象以及它们在生命存在中的关键作用,一直吸引着研究人员的关注。水的异常行为在低于冰点的温度下更为明显,众多理论和实验研究都致力于建立一个连贯的热力学和动力学框架,以理解过冷水。深度过冷区域中液 - 液临界点的存在与水的异常行为有关。然而,在极低温下对过冷水的实验研究受到晶体均匀成核的阻碍。最近,限制在纳米结构或溶液中的水引起了人们的兴趣,因为成核可以被延迟。这些系统对于当前的生物学进展也具有巨大的相关性;例如,过冷水常常被限制在细胞膜中,并作为生物分子的溶剂。特别是,由于疏水相互作用或在非极性界面存在时水的行为在胶束自组装、膜形成和蛋白质折叠中具有基本作用,最近人们对其给予了相当多的关注。本文回顾并比较了两项最新的计算研究工作,旨在阐明过冷区域中热力学行为的变化以及与疏水环境接触的水的液 - 液临界点现象。研究结果还与之前关于疏水环境中水的报告进行了比较。

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本文引用的文献

1
More than one dynamic crossover in protein hydration water.蛋白质水合水中的不止一个动态交叉点。
Proc Natl Acad Sci U S A. 2011 Dec 13;108(50):19873-8. doi: 10.1073/pnas.1104299108. Epub 2011 Nov 30.
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Phase transitions and dynamics of bulk and interfacial water.体相和界面水的相转变和动力学。
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Liquid polymorphism: water in nanoconfined and biological environments.液态多晶型现象:纳米受限环境和生物环境中的水。
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