高通量筛选
定向进化
生物催化
吞吐量
化学
微流控
基质(水族馆)
酶
组合化学
纳米技术
生化工程
催化作用
生物化学
计算机科学
材料科学
生物
反应机理
工程类
电信
基因
突变体
无线
生态学
作者
Aaron Debon,Moritz Pott,Richard Obexer,Anthony P. Green,Lukas Friedrich,Andrew D. Griffiths,Donald Hilvert
出处
期刊:Nature Catalysis
[Nature Portfolio]
日期:2019-09-13
卷期号:2 (9): 740-747
被引量:81
标识
DOI:10.1038/s41929-019-0340-5
摘要
Biocatalysis provides a potentially sustainable means of chemical manufacturing. However, the tailoring of enzymes to industrial processes is often laborious and time consuming, which limits the broad implementation of this approach. High-throughput screening methods can expedite the search for suitable catalysts, but are often constrained by the need for labelled substrates. The generalization of such techniques would therefore significantly expand their impact. Here we have established a versatile ultrahigh-throughput microfluidic assay that enables isolation of functional oxidases from libraries that contain up to 107 members. The increased throughput over prevalent methods led to complete active-site remodelling of cyclohexylamine oxidase in one round of directed evolution. A 960-fold increase in catalytic efficiency afforded an enzyme with wild-type levels of activity for a non-natural substrate, allowing biocatalytic synthesis of a sterically demanding pharmaceutical intermediate with complete stereocontrol. The coupled enzyme assay is label free and can be easily adapted to re-engineer any oxidase. Directed evolution typically requires extensive screening. This work presents an ultrahigh-throughput microfluidic assay, based on a coupled reaction and fluorescence-activated droplet sorting, enabling a 960-fold activity improvement of an amine oxidase for a non-natural substrate in a single round.
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