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蛋白质折叠的能量学

Energetics of protein folding.

作者信息

Baldwin Robert L

机构信息

Department of Biochemistry, Beckman Center, Stanford University Medical Center, Stanford, CA 94305, USA.

出版信息

J Mol Biol. 2007 Aug 10;371(2):283-301. doi: 10.1016/j.jmb.2007.05.078. Epub 2007 Jun 2.

DOI:10.1016/j.jmb.2007.05.078
PMID:17582437
Abstract

The energetics of protein folding determine the 3D structure of a folded protein. Knowledge of the energetics is needed to predict the 3D structure from the amino acid sequence or to modify the structure by protein engineering. Recent developments are discussed: major factors are reviewed and auxiliary factors are discussed briefly. Major factors include the hydrophobic factor (burial of non-polar surface area) and van der Waals interactions together with peptide hydrogen bonds and peptide solvation. The long-standing model for the hydrophobic factor (free energy change proportional to buried non-polar surface area) is contrasted with the packing-desolvation model and the approximate nature of the proportionality between free energy and apolar surface area is discussed. Recent energetic studies of forming peptide hydrogen bonds (gas phase) are reviewed together with studies of peptide solvation in solution. Closer agreement is achieved between the 1995 values for protein unfolding enthalpies in vacuum given by Lazaridis-Archontis-Karplus and Makhatadze-Privalov when the solvation enthalpy of the peptide group is taken from electrostatic calculations. Auxiliary factors in folding energetics include salt bridges and side-chain hydrogen bonds, disulfide bridges, and propensities to form alpha-helices and beta-structure. Backbone conformational entropy is a major energetic factor which is discussed only briefly for lack of knowledge.

摘要

蛋白质折叠的能量学决定了折叠后蛋白质的三维结构。要从氨基酸序列预测三维结构或通过蛋白质工程修饰结构,就需要了解能量学。本文讨论了近期的进展:回顾了主要因素,并简要讨论了辅助因素。主要因素包括疏水因素(非极性表面积的埋藏)、范德华相互作用以及肽氢键和肽溶剂化作用。将长期以来关于疏水因素的模型(自由能变化与埋藏的非极性表面积成正比)与堆积-去溶剂化模型进行了对比,并讨论了自由能与非极性表面积之间比例关系的近似性质。回顾了近期关于形成肽氢键(气相)的能量学研究以及溶液中肽溶剂化的研究。当肽基团的溶剂化焓取自静电计算时,拉扎里迪斯-阿孔蒂斯-卡尔普斯和马哈特泽-普里瓦洛夫给出的1995年蛋白质在真空中展开焓的值之间的一致性更高。折叠能量学中的辅助因素包括盐桥和侧链氢键、二硫键以及形成α-螺旋和β-结构的倾向。主链构象熵是一个主要的能量因素,由于缺乏相关知识,本文仅作了简要讨论。

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Energetics of protein folding.蛋白质折叠的能量学
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