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Omics-guided bacterial engineering of Escherichia coli ER2566 for recombinant protein expression

重组DNA 大肠杆菌 生物 代谢工程 基因 转录组 拉伤 基因表达 合成生物学 蛋白质工程 计算生物学 生物化学 解剖
作者
Lizhi Zhou,Yue Ma,Kaihang Wang,Tingting Chen,Yang Huang,Liqin Liu,Yuqian Li,Jie Sun,Yisha Hu,Tingting Li,Zhibo Kong,Yingbin Wang,Qingbing Zheng,Qinjian Zhao,Jun Zhang,Ying Gu,Hai Yu,Ningshao Xia,Shaowei Li
出处
期刊:Applied Microbiology and Biotechnology [Springer Science+Business Media]
卷期号:107 (2-3): 853-865 被引量:9
标识
DOI:10.1007/s00253-022-12339-6
摘要

The goal of bacterial engineering is to rewire metabolic pathways to generate high-value molecules for various applications. However, the production of recombinant proteins is constrained by the complexity of the connections between cellular physiology and recombinant protein synthesis. Here, we used a rational and highly efficient approach to improve bacterial engineering. Based on the complete genome and annotation information of the Escherichia coli ER2566 strain, we compared the transcriptomic profiles of the strain under leaky expression and low temperature-induced stress. Combining the gene ontology (GO) enrichment terms and differentially expressed genes (DEGs) with higher expression, we selected and knocked out 36 genes to determine the potential impact of these genes on protein production. Deletion of bluF, cydA, mngR, and udp led to a significant decrease in soluble recombinant protein production. Moreover, at low-temperature induction, 4 DEGs (gntK, flgH, flgK, flgL) were associated with enhanced expression of the recombinant protein. Knocking out several motility-related DEGs (ER2666-ΔflgH-ΔflgL-ΔflgK) simultaneously improved the protein yield by 1.5-fold at 24 °C induction, and the recombinant strain had the potential to be applied in the expression studies of different exogenous proteins, aiming to improve the yields of soluble form to varying degrees in comparison to the ER2566 strain. Totally, this study focused on the anabolic and stress-responsive hub genes of the adaptation of E. coli to recombinant protein overexpression on the transcriptome level and constructs a series of engineering strains increasing the soluble protein yield of recombinant proteins which lays a solid foundation for the engineering of bacterial strains for recombinant technological advances. KEY POINTS: • Comparative transcriptome analysis shows host responses with altered induction stress. • Deletion of bluF, cydA, mngR, and udp genes was identified to significantly decrease the soluble recombinant protein productions. • Synchronal knockout of flagellar genes in E. coli can enhance recombinant protein yield up to ~ 1.5-fold at 24 °C induction. • Non-model bacterial strains can be re-engineered for recombinant protein expression.
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