蛋白质水合作用和展开-从实验部分比体积和未折叠蛋白质模型的见解

Lynne Reed Murphy , Nobuyuki Matubayasi , Vilia A Payne , Ronald M Levy
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引用次数: 82

摘要

背景:蛋白质的部分比容是一个包含溶质-溶剂相互作用和蛋白质水合作用信息的实验量。我们使用水合壳模型将部分比体积划分为蛋白质所占的固有体积和溶剂与蛋白质相互作用所导致的溶剂所占体积的变化。我们试图从实验体积测量中提取蛋白质水合作用和展开的微观信息,而不使用计算机模拟。我们采用的思想是,蛋白质与溶剂的相互作用将与蛋白质的表面积成正比。结果:将实验蛋白的部分比容与其固有体积之差与蛋白质溶剂可及表面积的关系绘制成线性关系。讨论了不同蛋白质体积定义对蛋白质体积性质分析的影响。体积数据用于测试蛋白质未折叠状态的模型,并对变性状态做出预测。结论:水合壳体积变化与可及表面积之间的线性关系反映了不同种类蛋白质相似的表面性质(非极性、极性和带电表面的分数组成)。发现这种线性关系与如何将溶液划分为溶质和溶剂组分无关。然而,发现水化壳与散装水性质的解释非常依赖于模型。发现最大暴露的未折叠蛋白模型与展开的实验体积变化不一致。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Protein hydration and unfolding – insights from experimental partial specific volumes and unfolded protein models

Background: The partial specific volume of a protein is an experimental quantity containing information about solute–solvent interactions and protein hydration. We use a hydration-shell model to partition the partial specific volume into an intrinsic volume occupied by the protein and a change in the volume occupied by the solvent resulting from the solvent interactions with the protein. We seek to extract microscopic information about protein hydration and unfolding from experimental volume measurements without using computer simulations. We employ the idea that the protein–solvent interaction will be proportional to the surface area of the protein.

Results: A linear relationship is obtained when the difference between the experimental protein partial specific volume and its intrinsic volume is plotted as a function of the protein solvent-accessible surface area. The effect of using different protein volume definitions on the analysis of protein volumetric properties is discussed. Volumetric data are used to test a model for the unfolded state of proteins and to make predictions about the denatured state.

Conclusions: The linear relationship between hydration-shell volume change and accessible surface area reflects the similar surface properties (fractional composition of nonpolar, polar and charged surface) among a diverse set of proteins. This linear relationship is found to be independent of how the solution is partitioned into solute and solvent components. The interpretation of hydration shell versus bulk water properties is found to be very model dependent, however. The maximally exposed unfolded protein model is found to be inconsistent with experimental volume changes of unfolding.

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