毫秒
热稳定性
分子动力学
蛋白质动力学
蛋白质稳定性
蛋白质折叠
蛋白质设计
丙氨酸
蛋白质工程
蛋白质结构
生物物理学
化学
热稳定性
丙氨酸扫描
化学物理
结晶学
计算化学
氨基酸
生物
物理
突变
生物化学
突变
有机化学
酶
天文
基因
作者
Xue‐Ni Hou,Bin Song,Chang Zhao,Wen‐Ting Chu,Meixia Ruan,Dong Xu,Ling-Shen Meng,Zhou Gong,Yuxiang Weng,Jie Zheng,Jin Wang,Chun Tang
出处
期刊:JACS Au
[American Chemical Society]
日期:2024-08-14
卷期号:4 (8): 3310-3320
被引量:7
标识
DOI:10.1021/jacsau.4c00649
摘要
The stability of protein folded states is crucial for its function, yet the relationship with the protein sequence remains poorly understood. Prior studies have focused on the amino acid composition and thermodynamic couplings within a single folded conformation, overlooking the potential contribution of protein dynamics. Here, we address this gap by systematically analyzing the impact of alanine mutations in the C-terminal β-strand (β5) of ubiquitin, a model protein exhibiting millisecond timescale interconversion between two conformational states differing in the β5 position. Our findings unveil a negative correlation between millisecond dynamics and thermal stability, with alanine substitutions at seemingly flexible C-terminal residues significantly enhancing thermostability. Integrating spectroscopic and computational approaches, we demonstrate that the thermally unfolded state retains a substantial secondary structure but lacks β5 engagement, recapitulating the transition state for millisecond dynamics. Thus, alanine mutations that modulate the stabilities of the folded states with respect to the partially unfolded state impact both the dynamics and stability. Our findings underscore the importance of conformational dynamics with implications for protein engineering and design.
科研通智能强力驱动
Strongly Powered by AbleSci AI