Key Laboratory of System Bioengineering (Tianjin University), Ministry of Education, Tianjin, 300072, People's Republic of China.
J Ind Microbiol Biotechnol. 2014 Sep;41(9):1365-74. doi: 10.1007/s10295-014-1473-9. Epub 2014 Jun 26.
Combinatorial approach of adsorbent resin HP20 addition and metabolic profiling analysis were carried out to enhance ascomycin production. Under the optimal condition of 5 % m/v HP20 added at 24 h, ascomycin production was increased to 380 from 300 mg/L. To further rationally guide the improvement of ascomycin production, metabolic profiling analysis was employed to investigate the intracellular metabolite changes of Streptomyces hygroscopicus var. ascomyceticus FS35 in response to HP20 addition. A correlation between the metabolic profiles and ascomycin accumulation was revealed by partial least-squares to latent structures discriminant analysis, and 11 key metabolites that most contributed to metabolism differences and ascomycin biosynthesis were identified. Based on the analysis of metabolite changes together with their pathways, the potential key factors associated with ascomycin overproduction were determined. Finally, rationally designed fermentation strategies based on HP20 addition were performed as follows: 2 % v/v n-hexadecane was added at 24 h; 1.0 g/L valine was supplemented at 48 h; 1.0 g/L lysine was added at 72 h. The ascomycin production was ultimately improved to 460 mg/L, a 53.3 % enhancement compared with that obtained in initial condition. These results demonstrated that the combination of HP20 addition and metabolic profiling analysis could be successfully applied to the rational guidance of production improvement of ascomycin, as well as other clinically important compounds.
采用吸附树脂 HP20 添加与代谢轮廓分析的组合方法来提高两性霉素 B 的产量。在 5% m/v HP20 于 24 h 添加的最佳条件下,两性霉素 B 的产量从 300 mg/L 增加到 380 mg/L。为了进一步合理指导两性霉素 B 产量的提高,采用代谢轮廓分析研究吸水链霉菌 var. 对 HP20 添加的响应中的细胞内代谢物变化。通过偏最小二乘-判别分析揭示了代谢谱与两性霉素 B 积累之间的相关性,鉴定出对代谢差异和两性霉素 B 生物合成贡献最大的 11 种关键代谢物。基于代谢物变化及其途径的分析,确定了与两性霉素 B 过量产生相关的潜在关键因素。最后,根据 HP20 添加的分析结果,设计了合理的发酵策略如下:在 24 h 添加 2% v/v 正十六烷;在 48 h 补充 1.0 g/L 缬氨酸;在 72 h 添加 1.0 g/L 赖氨酸。最终,两性霉素 B 的产量提高到 460 mg/L,与初始条件相比提高了 53.3%。这些结果表明,HP20 添加与代谢轮廓分析的组合可成功应用于两性霉素 B 等临床重要化合物的生产改进的合理指导。