Liu Jiao, Zhao Xiaojia, Cheng Haijiao, Guo Yanmei, Ni Xiaomeng, Wang Lixian, Sun Guannan, Wen Xiao, Chen Jiuzhou, Wang Jin, An Jingjing, Guo Xuan, Shi Zhenkun, Li Haoran, Wang Ruoyu, Zhao Muqiang, Liao Xiaoping, Wang Yu, Zheng Ping, Wang Meng, Sun Jibin
Key Laboratory of Engineering Biology for Low-carbon Manufacturing, Tianjin Institute of Industrial Biotechnology, Chinese Academy of Sciences, Tianjin 300308, China; National Center of Technology Innovation for Synthetic Biology, Tianjin 300308, China.
Key Laboratory of Engineering Biology for Low-carbon Manufacturing, Tianjin Institute of Industrial Biotechnology, Chinese Academy of Sciences, Tianjin 300308, China; National Center of Technology Innovation for Synthetic Biology, Tianjin 300308, China; University of Chinese Academy of Sciences, Beijing 100049, China.
Trends Biotechnol. 2025 Jan;43(1):220-247. doi: 10.1016/j.tibtech.2024.09.020. Epub 2024 Oct 24.
Development of efficient microbial strains for biomanufacturing requires deep understanding of the biology and functional components responsible for the synthesis, transport, and tolerance of the target compounds. A high-quality controllable gene overexpression strain collection was constructed for the industrial workhorse Corynebacterium glutamicum covering 99.7% of its genes. The collection was then used for comprehensive screening of components relevant to biomanufacturing features. In total, 15 components endowing cells with improved hyperosmotic tolerance and l-lysine productivity were identified, including novel transcriptional factors and DNA repair proteins. Systematic interrogation of a subset of the collection revealed efficient and specific exporters functioning in both C. glutamicum and Escherichia coli. Application of the new exporters was showcased to construct a strain with the highest l-threonine production level reported for C. glutamicum (75.1 g/l and 1.5 g/l·h) thus far. The genome-scale gene overexpression collection will serve as a valuable resource for fundamental biological studies and for developing industrial microorganisms for producing amino acids and other biochemicals.
开发用于生物制造的高效微生物菌株需要深入了解负责目标化合物合成、运输和耐受性的生物学和功能组件。针对工业主力菌株谷氨酸棒杆菌构建了一个高质量的可控基因过表达菌株库,覆盖其99.7%的基因。然后利用该菌株库对与生物制造特性相关的组件进行全面筛选。总共鉴定出15个赋予细胞更高渗透压耐受性和L-赖氨酸生产力的组件,包括新型转录因子和DNA修复蛋白。对该菌株库的一个子集进行系统研究,发现了在谷氨酸棒杆菌和大肠杆菌中均起作用的高效且特异性的转运蛋白。展示了新转运蛋白的应用,构建出了一株迄今为止报道的谷氨酸棒杆菌L-苏氨酸产量最高的菌株(75.1 g/L,1.5 g/L·h)。基因组规模的基因过表达菌株库将成为基础生物学研究以及开发用于生产氨基酸和其他生化物质的工业微生物的宝贵资源。