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蛋白质折叠的理论观点。

Theoretical perspectives on protein folding.

机构信息

Biophysics Program, Institute for Physical Science and Technology and Department of Chemistry and Biochemistry, University of Maryland, College Park, Maryland 20742, USA.

出版信息

Annu Rev Biophys. 2010;39:159-83. doi: 10.1146/annurev-biophys-051309-103835.

Abstract

Understanding how monomeric proteins fold under in vitro conditions is crucial to describing their functions in the cellular context. Significant advances in theory and experiments have resulted in a conceptual framework for describing the folding mechanisms of globular proteins. The sizes of proteins in the denatured and folded states, cooperativity of the folding transition, dispersions in the melting temperatures at the residue level, and timescales of folding are, to a large extent, determined by N, the number of residues. The intricate details of folding as a function of denaturant concentration can be predicted by using a novel coarse-grained molecular transfer model. By watching one molecule fold at a time, using single-molecule methods, investigators have established the validity of the theoretically anticipated heterogeneity in the folding routes and the N-dependent timescales for the three stages in the approach to the native state. Despite the successes of theory, of which only a few examples are documented here, we conclude that much remains to be done to solve the protein folding problem in the broadest sense.

摘要

了解单体蛋白质在体外条件下如何折叠对于描述它们在细胞环境中的功能至关重要。理论和实验的重大进展已经为描述球状蛋白质的折叠机制提供了一个概念框架。变性和折叠状态下蛋白质的大小、折叠转变的协同性、残基水平的熔点分散度以及折叠的时间尺度在很大程度上由 N(残基数)决定。使用新的粗粒分子转移模型可以预测折叠作为变性剂浓度函数的复杂细节。通过使用单分子方法一次观察一个分子的折叠,研究人员证实了折叠途径的理论预期异质性以及接近天然状态的三个阶段的 N 依赖性时间尺度的有效性。尽管理论取得了成功,这里仅记录了其中的几个例子,但我们得出的结论是,要从广义上解决蛋白质折叠问题,还有很多工作要做。

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