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突变、截断和温度对 WW 结构域折叠动力学的影响。

Effects of mutation, truncation, and temperature on the folding kinetics of a WW domain.

机构信息

Baker Laboratory of Chemistry and Chemical Biology, Cornell University, Ithaca, NY 14853-1301, USA.

出版信息

J Mol Biol. 2012 Jul 20;420(4-5):350-65. doi: 10.1016/j.jmb.2012.04.027. Epub 2012 May 2.

Abstract

The purpose of this work is to show how mutation, truncation, and change of temperature can influence the folding kinetics of a protein. This is accomplished by principal component analysis of molecular-dynamics-generated folding trajectories of the triple β-strand WW domain from formin binding protein 28 (FBP28) (Protein Data Bank ID: 1E0L) and its full-size, and singly- and doubly-truncated mutants at temperatures below and very close to the melting point. The reasons for biphasic folding kinetics [i.e., coexistence of slow (three-state) and fast (two-state) phases], including the involvement of a solvent-exposed hydrophobic cluster and another delocalized hydrophobic core in the folding kinetics, are discussed. New folding pathways are identified in free-energy landscapes determined in terms of principal components for full-size mutants. Three-state folding is found to be a main mechanism for folding the FBP28 WW domain and most of the full-size and truncated mutants. The results from the theoretical analysis are compared to those from experiment. Agreements and discrepancies between the theoretical and experimental results are discussed. Because of its importance in understanding protein kinetics and function, the diffusive mechanism by which the FBP28 WW domain and its full-size and truncated mutants explore their conformational space is examined in terms of the mean-square displacement and principal component analysis eigenvalue spectrum analyses. Subdiffusive behavior is observed for all studied systems.

摘要

这项工作的目的是展示突变、截短和温度变化如何影响蛋白质的折叠动力学。通过对来自formin 结合蛋白 28(FBP28)(蛋白质数据库 ID:1E0L)及其全长、单突变和双突变体的分子动力学生成的折叠轨迹进行主成分分析,在低于和非常接近熔点的温度下实现了这一点。讨论了双峰折叠动力学的原因(即慢(三态)和快(两态)相共存),包括在折叠动力学中涉及溶剂暴露的疏水区簇和另一个弥散疏水区核心。在根据主成分确定的自由能景观中确定了新的折叠途径。对于全长突变体,发现三态折叠是折叠 FBP28 WW 结构域和大多数全长和截短突变体的主要机制。理论分析的结果与实验结果进行了比较。讨论了理论和实验结果之间的一致性和差异。由于它在理解蛋白质动力学和功能方面的重要性,根据均方位移和主成分分析特征值谱分析,检查了 FBP28 WW 结构域及其全长和截短突变体探索构象空间的扩散机制。观察到所有研究系统的亚扩散行为。

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