棒状链霉菌
酶
生物转化
转化(遗传学)
化学
产量(工程)
立体化学
生物化学
突变体
链霉菌
基质(水族馆)
生物合成
青霉素
生物
细菌
基因
抗生素
材料科学
遗传学
阿莫西林
冶金
克拉维酸
生态学
作者
Shiyi Song,Yingying Jiang,Ruidong Chen,Wencheng Su,Weinan Liang,Dameng Yang,Jincheng Li,Wuyuan Zhang,Shu‐Shan Gao,Bo Yuan,Ge Qu,Zhoutong Sun
出处
期刊:ChemBioChem
[Wiley]
日期:2022-04-06
卷期号:23 (11)
被引量:2
标识
DOI:10.1002/cbic.202200179
摘要
Deacetoxycephalosporin C synthase (DAOCS) catalyzes the transformation of penicillin G to phenylacetyl-7-aminodeacetoxycephalosporanic acid (G-7-ADCA) for which it depends on 2-oxoglutarate (2OG) as co-substrate. However, the low activity of DAOCS and the expense of 2OG restricts its practical applications in the production of G-7-ADCA. Herein, a rational design campaign was performed on a DAOCS from Streptomyces clavuligerus (scDAOCS) in the quest to construct novel expandases. The resulting mutants showed 25∼58 % increase in activity compared to the template. The dominant DAOCS variants were then embedded into a three-enzyme co-expression system, consisting of a catalase and an L-glutamic oxidase for the generation of 2OG, to convert penicillin G to G-7-ADCA in E. coli. The engineered whole-cell enzyme cascade was applied to an up-scaled reaction, exhibiting a yield of G-7-ADCA up to 39.21 mM (14.6 g ⋅ L-1 ) with a conversion of 78.42 mol %. This work highlights the potential of the integrated whole-cell system that may inspire further research on green and efficient production of 7-ADCA.
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