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通过对地衣芽孢杆菌中碳、氮和磷代谢主要转录因子进行代谢工程改造以提高杆菌肽产量

Metabolic Engineering of Main Transcription Factors in Carbon, Nitrogen, and Phosphorus Metabolisms for Enhanced Production of Bacitracin in Bacillus licheniformis.

作者信息

Cai Dongbo, Zhu Jiang, Zhu Shan, Lu Yu, Zhang Bowen, Lu Kai, Li Junhui, Ma Xin, Chen Shouwen

机构信息

State Key Laboratory of Biocatalysis and Enzyme Engineering, Environmental Microbial Technology Center of Hubei Province, College of Life Sciences , Hubei University , Wuhan 430062 , PR China.

State Key Laboratory of Agricultural Microbiology, College of Life Science and Technology , Huazhong Agricultural University , Wuhan 430070 , PR China.

出版信息

ACS Synth Biol. 2019 Apr 19;8(4):866-875. doi: 10.1021/acssynbio.9b00005. Epub 2019 Mar 22.

Abstract

Primary metabolism plays a key role in the synthesis of secondary metabolite. In this study, the main transcription factors in carbon, nitrogen, and phosphorus metabolisms (CcpA, CcpC, CcpN, CodY, TnrA, GlnR, and PhoP) were engineered to improve bacitracin yield in Bacillus licheniformis DW2, an industrial strain for bacitracin production. First, our results demonstrated that deletions of ccpC and ccpN improved ATP and NADPH supplies, and the bacitracin yields were respectively increased by 14.02% and 16.06% compared with that of DW2, while it was decreased significantly in ccpA deficient strain DW2ΔccpA. Second, excessive branched chain amino acids (BCAAs) were accumulated in codY, tnrA, and glnR deletion strains DW2ΔcodY, DW2ΔtnrA, and DW2ΔglnR, which resulted in the nitrogen catabolite repressions and reductions of bacitracin yields. Moreover, overexpression of these regulators improved intracellular BCAA supplies, and further enhanced bacitracin yields by 14.17%, 12.98%, and 16.20%, respectively. Furthermore, our results confirmed that phosphate addition reduced bacitracin synthesis capability, and bacitracin yield was improved by 15.71% in gene phop deletion strain. On the contrary, overexpression of PhoP led to a 19.40% decrease of bacitracin yield. Finally, a combinatorial engineering of these above metabolic manipulations was applied, and bacitracin yield produced by the final strain DW2-CNCTGP (Simultaneously deleting ccpC, ccpN, phop and overexpressing glnR, codY, and tnrA in DW2) reached 1014.38 U/mL, increased by 35.72% compared to DW2, and this yield was the highest bacitracin yield currently reported. Taken together, this study implied that metabolic engineering of carbon, nitrogen, and phosphorus metabolism regulators is an efficient strategy to enhance bacitracin production, and provided a promising B. licheniformis strain for industrial production of bacitracin.

摘要

初级代谢在次级代谢产物的合成中起关键作用。在本研究中,对碳、氮和磷代谢中的主要转录因子(CcpA、CcpC、CcpN、CodY、TnrA、GlnR和PhoP)进行改造,以提高地衣芽孢杆菌DW2(一种杆菌肽生产工业菌株)中杆菌肽的产量。首先,我们的结果表明,缺失ccpC和ccpN可改善ATP和NADPH的供应,与DW2相比,杆菌肽产量分别提高了14.02%和16.06%,而在ccpA缺陷菌株DW2ΔccpA中产量显著下降。其次,在codY、tnrA和glnR缺失菌株DW2ΔcodY、DW2ΔtnrA和DW2ΔglnR中积累了过量的支链氨基酸(BCAAs),这导致了氮分解代谢物阻遏和杆菌肽产量降低。此外,这些调节因子的过表达改善了细胞内BCAAs的供应,并分别使杆菌肽产量进一步提高了14.17%、12.98%和16.20%。此外,我们的结果证实,添加磷酸盐会降低杆菌肽的合成能力,在基因phop缺失菌株中杆菌肽产量提高了15.71%。相反,PhoP的过表达导致杆菌肽产量下降19.40%。最后,应用上述代谢操作的组合工程,最终菌株DW2-CNCTGP(在DW2中同时缺失ccpC、ccpN、phop并过表达glnR、codY和tnrA)产生的杆菌肽产量达到1014.38 U/mL,比DW2提高了35.72%,该产量是目前报道的最高杆菌肽产量。综上所述,本研究表明,对碳、氮和磷代谢调节因子进行代谢工程改造是提高杆菌肽产量的有效策略,并为杆菌肽的工业化生产提供了一种有前景的地衣芽孢杆菌菌株。

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