没食子酸
大肠杆菌
碳通量
化学
生物化学
生物合成
合成生物学
莽草酸途径
酶
微生物
葡萄糖苷
基因
抗氧化剂
食品科学
生物
细菌
计算生物学
生态学
遗传学
生态系统
医学
替代医学
病理
作者
Jiao Guo,Xiang Ren,Liangyu Lu,Ning An,Shuwei Li,Mingjie Geng,Geng Li,Xiaolin Shen,Xinxiao Sun,Jia Wang,Qipeng Yuan
摘要
Abstract Gallic acid (GA) and β‐glucogallin (BGG) are natural products with diverse uses in pharmaceutical, food, chemical and cosmetic industries. They are valued for their wide‐ranging properties such as antioxidant, antibacterial, antidiabetic, and anticancer properties. Despite their significant importance, microbial production of GA and BGG faces challenges such as limited titers and yields, along with the incomplete understanding of BGG biosynthesis pathways in microorganisms. To address these challenges, we developed a recombinant Escherichia coli strain capable of efficiently producing GA. Our approach involved screening efficient pathway enzymes, integrating biosynthetic pathway genes into the genome while balancing carbon flux via adjusting expression levels, and strengthening the shikimate pathway to remove bottlenecks. The resultant strain achieved impressive results, producing 51.57 g/L of GA with a carbon yield of 0.45 g/g glucose and a productivity of 1.07 g/L/h. Furthermore, we extended this microbial platform to biosynthesize BGG by screening GA 1‐ O ‐glucosyltransferase, leading to the de novo production of 92.42 mg/L of BGG. This work establishes an efficient chassis for producing GA at an industrial level and provides a microbial platform for generating GA derivatives.
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