木糖
生物合成
化学
奎宁酸
绿原酸
代谢工程
生物化学
咖啡酸
背景(考古学)
代谢途径
新陈代谢
生物
食品科学
酶
发酵
古生物学
抗氧化剂
作者
Yuhui Wang,Haining Tan,Yanling Wang,Jing Qin,Xinyu Zhao,Yuhan Di,Lijie Xie,Yujie Wang,Xiaojing Zhao,Ziyu Li,Guozhen Ma,Lingyan Jiang,B L Liu,Di Huang
标识
DOI:10.1021/acs.jafc.3c08587
摘要
Chlorogenic acid (CGA) has incredible potential for various pharmaceutical, nutraceutical, and agricultural applications. However, the traditional extraction approach from plants is time-consuming, further limiting its production. Herein, we design and construct the de novo biosynthesis pathway of CGA using modular coculture engineering in Escherichia coli, which is composed of MG09 and BD07 strains. To accomplish this, the phenylalanine-deficient MG09 strain was engineered to utilize xylose preferentially and to overproduce precursor caffeic acid, while the tyrosine-deficient BD07 strain was constructed to consume glucose exclusively to enhance another precursor quinic acid availability for the biosynthesis of CGA. Further pathway modularization and balancing in the context of syntrophic cocultures resulted in additional production improvement. The coculture strategy avoids metabolic flux competition in the biosynthesis of two CGA precursors, caffeic acid and quinic acid, and allows for production improvement by balancing module proportions. Finally, the optimized coculture based on the aforementioned efforts produced 131.31 ± 7.89 mg/L CGA. Overall, the modular coculture engineering strategy in this study provides a reference for constructing microbial cell factories that can efficiently biomanufacture complex natural products.
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