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拥挤和水合作用对蛋白质构象的影响:溶胶-凝胶包封蛋白质的研究

Crowding and hydration effects on protein conformation: a study with sol-gel encapsulated proteins.

作者信息

Eggers D K, Valentine J S

机构信息

Department of Chemistry and Biochemistry, University of California, Los Angeles, CA 90095-1569, USA.

出版信息

J Mol Biol. 2001 Dec 7;314(4):911-22. doi: 10.1006/jmbi.2001.5166.

Abstract

We are developing an experimental system for testing the effects of macromolecular crowding and molecular confinement on protein structure. In the present study, solvent effects on the secondary structure of two proteins were examined by circular dichroism following encapsulation in the hydrated pores of a silica glass matrix by the sol-gel method. Changes in the unfolded conformations of encapsulated apomyoglobin and reduced serum albumin were analyzed after equilibration with aqueous solutions of natural osmolytes, short-chain alcohols, polyethylene glycol, and a complete series of Hofmeister cations. In many instances, the alpha-helical content of the encapsulated protein was increased by addition of solutes at concentrations that have no effect on the protein in the absence of the glass. The results are discussed from the perspective of water structure. We argue that perturbed water at the silica interface causes an increase in the average free energy of the bulk water phase which, consequently, diminishes the strength of the hydrophobic effect inside the glass matrix and destabilizes the conformation of encapsulated proteins. We propose that solutes can increase the strength of the hydrophobic effect and influence folding equilibria without directly interacting with the protein. A hypothesis is provided for the apparent paradox that kosmotropic (strongly water binding) anions favor native protein structure, whereas chaotropic (weakly water binding) cations enhance native protein structure. The encapsulation results suggest that macromolecular crowding and molecular confinement are accompanied by hydration effects that may oppose or potentiate the stabilizing effects of excluded volume on protein structure, depending on the surface chemistry of the crowding agent and its influence on bulk water structure. In the crowded environment of a living cell, excluded volume effects, surface-induced water structure, and compatible solutes are expected to complement the dominant forces in protein folding.

摘要

我们正在开发一个实验系统,用于测试大分子拥挤和分子限制对蛋白质结构的影响。在本研究中,通过溶胶-凝胶法将两种蛋白质封装在硅胶玻璃基质的水合孔中后,利用圆二色性检测了溶剂对其二级结构的影响。在用天然渗透剂、短链醇、聚乙二醇和一系列完整的霍夫迈斯特阳离子的水溶液平衡后,分析了封装的脱辅基肌红蛋白和还原血清白蛋白未折叠构象的变化。在许多情况下,添加在无玻璃时对蛋白质无影响浓度的溶质,会增加封装蛋白质的α-螺旋含量。从水结构的角度对结果进行了讨论。我们认为,硅胶界面处受扰动的水会导致本体水相平均自由能增加,从而削弱玻璃基质内部疏水作用的强度,并使封装蛋白质的构象不稳定。我们提出,溶质可以增加疏水作用的强度并影响折叠平衡,而无需直接与蛋白质相互作用。针对亲液性(强水结合)阴离子有利于天然蛋白质结构,而离液序列高的(弱水结合)阳离子增强天然蛋白质结构这一明显矛盾,提供了一个假设。封装结果表明,大分子拥挤和分子限制伴随着水合作用,这可能会对抗或增强排除体积对蛋白质结构的稳定作用,具体取决于拥挤剂的表面化学性质及其对本体水结构的影响。在活细胞的拥挤环境中,排除体积效应、表面诱导的水结构和相容性溶质有望补充蛋白质折叠中的主导作用力。

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