Enhanced pinocembrin production in Escherichia coli by regulating cinnamic acid metabolism
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作者:
Weijia Cao
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机构:State Key Laboratory of Materials-Oriented Chemical Engineering,
Weijia Cao
Weichao Ma
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机构:State Key Laboratory of Materials-Oriented Chemical Engineering,
Weichao Ma
Xin Wang
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机构:State Key Laboratory of Materials-Oriented Chemical Engineering,
Xin Wang
Bowen Zhang
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机构:State Key Laboratory of Materials-Oriented Chemical Engineering,
Bowen Zhang
Xun Cao
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机构:State Key Laboratory of Materials-Oriented Chemical Engineering,
Xun Cao
Kequan Chen
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机构:State Key Laboratory of Materials-Oriented Chemical Engineering,
Kequan Chen
Yan Li
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机构:State Key Laboratory of Materials-Oriented Chemical Engineering,
Yan Li
Pingkai Ouyang
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机构:State Key Laboratory of Materials-Oriented Chemical Engineering,
Pingkai Ouyang
机构:
[1] State Key Laboratory of Materials-Oriented Chemical Engineering,
[2] College of Biotechnology and Pharmaceutical Engineering,undefined
[3] Nanjing Tech University,undefined
[4] College of Bioengineering and Biotechnology,undefined
[5] Tianshui Normal University,undefined
来源:
Scientific Reports
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6卷
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摘要:
Microbial biosynthesis of pinocembrin is of great interest in the area of drug research and human healthcare. Here we found that the accumulation of the pathway intermediate cinnamic acid adversely affected pinocembrin production. Hence, a stepwise metabolic engineering strategy was carried out aimed at eliminating this pathway bottleneck and increasing pinocembrin production. The screening of gene source and the optimization of gene expression was first employed to regulate the synthetic pathway of cinnamic acid, which showed a 3.53-fold increase in pinocembrin production (7.76 mg/L) occurred with the alleviation of cinnamic acid accumulation in the engineered E. coli. Then, the downstream pathway that consuming cinnamic acid was optimized by the site-directed mutagenesis of chalcone synthase and cofactor engineering. S165M mutant of chalcone synthase could efficiently improve the pinocembrin production, and allowed the product titer of pinocembrin increased to 40.05 mg/L coupled with the malonyl-CoA engineering. With a two-phase pH fermentation strategy, the cultivation of the optimized strain resulted in a final pinocembrin titer of 67.81 mg/L. The results and engineering strategies demonstrated here would hold promise for the titer improvement of other flavonoids.