木桶(钟表)
折叠(DSP实现)
模块化设计
蛋白质设计
蛋白质工程
上位性
蛋白质折叠
计算生物学
理论(学习稳定性)
蛋白质稳定性
化学
蛋白质结构
计算机科学
生物物理学
生物
生物化学
酶
材料科学
工程类
机器学习
电气工程
复合材料
操作系统
基因
作者
Sergio Romero‐Romero,Miguel Costas,Daniel‐Adriano Silva,Sina Kordes,Eréndira Rojas‐Ortega,Cinthya Tapia de Aquino,Yasel Guerra,S. Shanmugaratnam,A. Rodríguez-Romero,David Baker,Birte Höcker,D. Alejandro Fernández‐Velasco
标识
DOI:10.1016/j.jmb.2021.167153
摘要
The ability to design stable proteins with custom-made functions is a major goal in biochemistry with practical relevance for our environment and society. Understanding and manipulating protein stability provide crucial information on the molecular determinants that modulate structure and stability, and expand the applications of de novo proteins. Since the (β/⍺)8-barrel or TIM-barrel fold is one of the most common functional scaffolds, in this work we designed a collection of stable de novo TIM barrels (DeNovoTIMs), using a computational fixed-backbone and modular approach based on improved hydrophobic packing of sTIM11, the first validated de novo TIM barrel, and subjected them to a thorough folding analysis. DeNovoTIMs navigate a region of the stability landscape previously uncharted by natural TIM barrels, with variations spanning 60 degrees in melting temperature and 22 kcal per mol in conformational stability throughout the designs. Significant non-additive or epistatic effects were observed when stabilizing mutations from different regions of the barrel were combined. The molecular basis of epistasis in DeNovoTIMs appears to be related to the extension of the hydrophobic cores. This study is an important step towards the fine-tuned modulation of protein stability by design.
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