De Novo Design, Directed Evolution and Computational Study of Heme-Binding Helical Bundle Protein Catalysts for Biocatalytic Enantioselective Ge–H Insertion

化学 对映选择合成 定向进化 催化作用 蛋白质设计 立体选择性 蛋白质工程 捆绑 过渡状态 立体化学 氢键 定向分子进化 组合化学 立体异构 分子动力学 酶催化 生物催化 蛋白质动力学 活动站点 辅因子 手性(物理) 蛋白质折叠 基质(水族馆) 分子内力 分子 互补性(分子生物学) 突变体 血浆蛋白结合 蛋白质结构
作者
Wei Huang,Gessica M. Adornato,Maggie Horst,Turki M. Alturaifi,Kai-Peng Hou,Peng Liu,William F. DeGrado,Yang Yang
出处
期刊:Journal of the American Chemical Society [American Chemical Society]
卷期号:147 (44): 40869-40878
标识
DOI:10.1021/jacs.5c13909
摘要

De novo designed proteins offer a malleable platform for the development of stereoselective transformations not found in biochemistry. Here, we report the de novo design and directed evolution of helical bundle protein catalysts for enantioselective germylation through Ge-H insertion, a transformation not previously achieved by enzymatic catalysis. Comparative computational analysis revealed that, relative to Si-H insertion, the Ge-H insertion reaction proceeds through an earlier and more flexible transition state, introducing distinct challenges for stereocontrol. Using a fully de novo designed truncated four-helix bundle scaffold as the starting point, directed evolution afforded a quadruple mutant that catalyzes Ge-H insertion with high efficiency, enantioselectivity, and broad substrate scope. Molecular dynamics simulations indicated that beneficial mutations introduced from directed evolution enhanced active-site preorganization and modulated local backbone flexibility, contributing to improved transition-state complementarity with fine-tuned binding pocket size and more stable cofactor positioning regulated by hydrogen bonding interactions. These findings showcase the excellent potential for de novo proteins to achieve stereoselective transformations previously unknown to biocatalysts and underscore the importance of active-site remodeling of de novo protein scaffolds via directed evolution in achieving selective catalysis involving flexible transition states.
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