酰胺酶
突变
生物化学
化学
酶
突变体
生物合成
单加氧酶
蛋白质工程
代谢工程
限制
青霉素酰胺酶
定向进化
代谢途径
基质(水族馆)
水解
定点突变
生物催化
饱和突变
底物特异性
合成生物学
催化效率
氨基酸
酯酶
作者
Xingyu Hou,Ce Jiang,Jingjing Yuan,Guangyue Li,Jie Ren
标识
DOI:10.1021/acs.jafc.5c13683
摘要
Indole-3-acetic acid (IAA) is a vital plant hormone, yet its natural synthesis is insufficient to meet agricultural demand. The indole-3-acetamide (IAM) pathway offers a promising route for microbial IAA production but suffers from inefficient amidase activity. In this study, we identified and engineered an amidase (RsAD) from Rhodococcus sp. through structural analysis, which revealed a narrow substrate channel limiting IAM access, followed by targeted mutagenesis to generate the optimized mutant RsAD-L447A. This mutant exhibited a 3.1-fold increase in catalytic efficiency ( k cat / K m ) and enabled complete IAM hydrolysis without the accumulation of intermediates. Coexpression of RsAD-L447A with l -tryptophan monooxygenase established a cascade pathway for IAA synthesis in Escherichia coli . Blocking the competing tnaA -mediated degradation pathway further improved precursor utilization. As a result, IAA production reached 13.3 from 20 g/L l -tryptophan in shake-flask cultures. These findings demonstrate an effective enzyme engineering and metabolic optimization strategy for high-level IAA biosynthesis.
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