化学
选择性
基质(水族馆)
生化工程
化学空间
生物催化
过程(计算)
计算生物学
组合化学
生物系统
反应机理
药物发现
生物化学
计算机科学
催化作用
地质学
海洋学
工程类
生物
操作系统
作者
Hanna D. Clements,Autumn R. Flynn,Bryce T. Nicholls,Daria Grosheva,Sarah J. Lefave,Morgan T. Merriman,Todd K. Hyster,Matthew S. Sigman
摘要
The study of non-natural biocatalytic transformations relies heavily on empirical methods, such as directed evolution, for identifying improved variants. Although exceptionally effective, this approach provides limited insight into the molecular mechanisms behind the transformations and necessitates multiple protein engineering campaigns for new reactants. To address this limitation, we disclose a strategy to explore the biocatalytic reaction space and garner insight into the molecular mechanisms driving enzymatic transformations. Specifically, we explored the selectivity of an "ene"-reductase, GluER-T36A, to create a data-driven toolset that explores reaction space and rationalizes the observed and predicted selectivities of substrate/mutant combinations. The resultant statistical models related structural features of the enzyme and substrate to selectivity and were used to effectively predict selectivity in reactions with out-of-sample substrates and mutants. Our approach provided a deeper understanding of enantioinduction by GluER-T36A and holds the potential to enhance the virtual screening of enzyme mutants.
科研通智能强力驱动
Strongly Powered by AbleSci AI