区域选择性
化学
羟基化
蛋白质工程
生物催化
催化作用
立体化学
组合化学
酶动力学
定向进化
酿酒酵母
基质(水族馆)
活动站点
酶
计算生物学
生物化学
突变体
生物
酵母
反应机理
基因
生态学
作者
Anja Knorrscheidt,Jordi Soler Soler,Nicole Hünecke,Pascal Püllmann,Marc Garcia‐Borràs,Martin J. Weissenborn
出处
期刊:ACS Catalysis
[American Chemical Society]
日期:2021-06-07
卷期号:11 (12): 7327-7338
被引量:61
标识
DOI:10.1021/acscatal.1c00847
摘要
Unspecific peroxygenases (UPOs) enable oxyfunctionalizations of a broad substrate range with unparalleled activities. Tailoring these enzymes for chemo- and regioselective transformations represents a grand challenge due to the difficulties in their heterologous productions. Herein, we performed protein engineering in Saccharomyces cerevisiae using the MthUPO from Myceliophthora thermophila. More than 5300 transformants were screened. This protein engineering led to a significant reshaping of the active site as elucidated by computational modelling. The reshaping was responsible for the increased oxyfunctionalization activity, with improved k cat/K m values of up to 16.5-fold for the model substrate 5-nitro-1,3-benzodioxole. Moreover, variants were identified with high chemo- and regioselectivities in the oxyfunctionalization of aromatic and benzylic carbons, respectively. The benzylic hydroxylation was demonstrated to perform with enantioselectivities of up to 95% ee. The proposed evolutionary protocol and rationalization of the enhanced activities and selectivities acquired by MthUPO variants represent a step forward toward the use and implementation of UPOs in biocatalytic synthetic pathways of industrial interest.
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