Sun Wenchao, Tang Yulin, Tian Yahao, Liu Zhengkai, Xiong Wenwen, Zhang Hengshuai, Chen Liang, Wu Heyun, Ma Qian, Xie Xixian
Key Laboratory of Industrial Fermentation Microbiology, Ministry of Education, Tianjin University of Science and Technology, Tianjin, 300457, China.
College of Biotechnology, Tianjin University of Science and Technology, Tianjin, 300457, China.
Synth Syst Biotechnol. 2025 May 12;10(3):1014-1026. doi: 10.1016/j.synbio.2025.05.003. eCollection 2025 Sep.
Achieving a balanced cell growth and biosynthesis of target products is a pivotal challenge confronted in the realm of green biomanufacturing of chemicals, and it holds the promise of significantly enhancing the titer/yield/productivity of the target products. The co-utilization of carbon sources has emerged as a proven approach for the precise regulation of cell growth and biosynthesis processes, thereby serving as a potent strategy to expedite the production of chemicals. In our previous study, we successfully demonstrated the efficient production of N-acetyl-glucosamine in engineered by leveraging an appropriate catabolic division of labor, utilizing a mixture of glycerol and glucose as the carbon source. In this study, we further refined the division of labor between these two carbon sources by meticulously regulating the expression of the gene, which encodes glucose-6-phosphate dehydrogenase and is crucial in diverting carbon source to the pentose phosphate pathway (PPP). After comparing three strategies for balancing cell growth and production, the engineered strain NAG-1 with knocked out aided by the optimization of the glycerol-to-glucose ratio and the feeding mode of carbon sources resulted in robust production of N-acetyl-glucosamine. Remarkable production in a 5 L bioreactor was achieved, obtaining 249 g/L of N-acetyl-glucosamine with a yield of 0.684 g/g of total carbon sources (specifically, 0.791 g/g of glucose) and a productivity of 3.46 g/L/h. These results establish NAG-1 as the most efficient microbial cell factory reported thus far for the bioproduction of N-acetyl-glucosamine. The robust production of N-acetyl-glucosamine in using a mixture of glycerol and glucose suggests the immense potential of mixed carbon sources in the industrial green biomanufacturing of chemicals.
实现细胞生长与目标产物生物合成的平衡是绿色化学生物制造领域面临的关键挑战,有望显著提高目标产物的滴度/产量/生产率。碳源的共同利用已成为精确调控细胞生长和生物合成过程的一种成熟方法,从而成为加速化学品生产的有效策略。在我们之前的研究中,通过利用甘油和葡萄糖的混合物作为碳源,借助适当的分解代谢分工,成功证明了工程菌高效生产N - 乙酰 - 葡萄糖胺。在本研究中,我们通过精细调控编码葡萄糖 - 6 - 磷酸脱氢酶且对将碳源转向磷酸戊糖途径(PPP)至关重要的基因的表达,进一步优化了这两种碳源之间的分工。在比较了三种平衡细胞生长和生产的策略后,通过优化甘油与葡萄糖的比例以及碳源的补料模式,敲除的工程菌株NAG - 1实现了N - 乙酰 - 葡萄糖胺的强劲生产。在5 L生物反应器中取得了显著产量,获得了249 g/L的N - 乙酰 - 葡萄糖胺,总碳源产率为0.684 g/g(具体而言,葡萄糖产率为0.791 g/g),生产率为3.46 g/L/h。这些结果确立了NAG - 1作为迄今为止报道的用于生物生产N - 乙酰 - 葡萄糖胺的最有效微生物细胞工厂。利用甘油和葡萄糖混合物在中强劲生产N - 乙酰 - 葡萄糖胺表明混合碳源在工业绿色化学生物制造中具有巨大潜力。