The Key Laboratory of Industrial Biotechnology, Ministry of Education, School of Biotechnology, Jiangnan University, 1800 Lihu Road, Wuxi, 214122, Jiangsu, China.
Bioprocess Biosyst Eng. 2013 Dec;36(12):1843-9. doi: 10.1007/s00449-013-0958-7. Epub 2013 Apr 27.
ε-Poly-L-lysine (ε-PL), one of the only two homo-poly amino acids known in nature, is used as a preservative. In this study, strategies of feeding precursor L-lysine into 5 L laboratory scale fermenters, including optimization of L-lysine concentration and time, was investigated to optimize the production of ε-PL by Streptomyces sp. M-Z18. The optimized strategy was then used in ε-PL fed-batch fermentation in which glucose and glycerol served as mixed carbon sources. In this way, a novel ε-PL production strategy involving precursor L-lysine coupled with glucose-glycerol co-fermentation was developed. Under optimal conditions, ε-PL production reached 37.6 g/l, which was 6.2 % greater than in a previous study in which glucose and glycerol co-fermentation was performed without added L-lysine (35.14 g/l). To the best of our knowledge, this is the first report of the enhancement of ε-PL production through L-lysine feeding to evaluate the use of fermenters. Meanwhile, the role of L-lysine in the promotion of ε-PL production, participating ε-PL synthesis as a whole, was first determined using the L-[U-(13)C] lysine labeling method. It has been suggested that the bottleneck of ε-PL synthesis in Streptomyces sp. M-Z18 is in the biosynthesis of precursor L-lysine. The information obtained in the present work may facilitate strain improvement and efficient large-scale ε-PL production.
ε-聚赖氨酸(ε-PL)是自然界中仅有的两种同型聚氨基酸之一,被用作防腐剂。在这项研究中,通过向 5L 实验室规模发酵罐中添加前体 L-赖氨酸的策略,包括优化 L-赖氨酸浓度和时间,来优化ε-PL 的生产。然后,将优化的策略用于ε-PL 补料分批发酵中,葡萄糖和甘油作为混合碳源。通过这种方式,开发了一种涉及前体 L-赖氨酸与葡萄糖-甘油共发酵偶联的新型ε-PL 生产策略。在最佳条件下,ε-PL 的产量达到 37.6 g/L,比之前在没有添加 L-赖氨酸的情况下进行葡萄糖和甘油共发酵的研究中(35.14 g/L)提高了 6.2%。据我们所知,这是首次报道通过添加 L-赖氨酸来评估发酵罐使用情况,从而提高ε-PL 产量的研究。同时,使用 L-[U-(13)C]赖氨酸标记法首次确定了 L-赖氨酸在促进ε-PL 生产中的作用,作为整体参与ε-PL 合成。据认为,ε-PL 在 M-Z18 链霉菌中的合成瓶颈在于前体 L-赖氨酸的生物合成。本研究获得的信息可能有助于菌株改良和高效的ε-PL 大规模生产。