生物传感器
定向进化
定向分子进化
合成生物学
选择(遗传算法)
酶
基质(水族馆)
小分子
配体(生物化学)
化学
计算生物学
蛋白质工程
肽库
纳米技术
生物催化
生物化学
生物
组合化学
噬菌体展示
噬菌体
计算机科学
材料科学
基因
催化作用
肽序列
生态学
肽
突变体
离子液体
受体
人工智能
作者
Kohar Jones,Harrison M. Snodgrass,Ketaki Belsare,Bryan C. Dickinson,Jared C. Lewis
出处
期刊:ACS central science
[American Chemical Society]
日期:2021-09-13
卷期号:7 (9): 1581-1590
被引量:12
标识
DOI:10.1021/acscentsci.1c00811
摘要
Ligand-dependent biosensors are valuable tools for coupling the intracellular concentrations of small molecules to easily detectable readouts such as absorbance, fluorescence, or cell growth. While ligand-dependent biosensors are widely used for monitoring the production of small molecules in engineered cells and for controlling or optimizing biosynthetic pathways, their application to directed evolution for biocatalysts remains underexplored. As a consequence, emerging continuous evolution technologies are rarely applied to biocatalyst evolution. Here, we develop a panel of ligand-dependent biosensors that can detect a range of small molecules. We demonstrate that these biosensors can link enzymatic activity to the production of an essential phage protein to enable biocatalyst-dependent phage-assisted continuous evolution (PACE) and phage-assisted continuous selection (PACS). By combining these phage-based evolution and library selection technologies, we demonstrate that we can evolve enzyme variants with improved and expanded catalytic properties. Finally, we show that the genetic diversity resulting from a highly mutated PACS library is enriched for active enzyme variants with altered substrate scope. These results lay the foundation for using phage-based continuous evolution and selection technologies to engineer biocatalysts with novel substrate scope and reactivity.
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