State Key Laboratory of Food Science and Technology, Jiangnan University, Wuxi, China.
Yeast. 2012 Jun;29(6):209-17. doi: 10.1002/yea.2902. Epub 2012 Jun 1.
Metabolic engineering of Saccharomyces cerevisiae for high-yield production of carboxylic acid requires a cytosolic pyruvate pool as precursor. In this study, a novel strategy to improve pyruvate production and reduce metabolic by-products via regulating thiamine synthesis was explored. Two of the thiamine biosynthesis regulatory genes, THI2 and THI3, were disrupted in the S. cerevisiae parent strain FMME-002. The mutants FMME-002ΔTHI2 and FMME-002ΔTHI3 both exhibited an enhanced pyruvate yield. Moreover, FMME-002ΔTHI2 achieved a relatively higher pyruvate production, and the highest concentration of pyruvate was achieved when 0.04 µ m thiamine was added. Enzyme assays and fermentation profiles of the THI2-complemented strain indicated that the observed metabolic changes represented intrinsic effects of THI2 deletion on the physiology of S. cerevisiae. Under optimal C:N ratio conditions, FMME-002ΔTHI2 produced pyruvate up to 8.21 ± 0.30 g/l, whereas the ethanol titre decreased to 2.21 ± 0.24 g/l after 96 h of cultivation. These results demonstrate the possibility of improving pyruvate production by regulating thiamine synthesis in S. cerevisiae.
酿酒酵母代谢工程高产羧酸需要细胞溶质丙酮酸池作为前体。在这项研究中,探索了一种通过调节硫胺素合成来提高丙酮酸产量和减少代谢副产物的新策略。在酿酒酵母亲本菌株 FMME-002 中敲除了两个硫胺素生物合成调控基因 THI2 和 THI3。突变株 FMME-002ΔTHI2 和 FMME-002ΔTHI3 均表现出增强的丙酮酸产率。此外,FMME-002ΔTHI2 实现了相对较高的丙酮酸产量,当添加 0.04 µm 硫胺素时达到了最高的丙酮酸浓度。酶测定和 THI2 互补菌株的发酵谱表明,观察到的代谢变化代表了 THI2 缺失对酿酒酵母生理学的内在影响。在最佳 C:N 比条件下,FMME-002ΔTHI2 生产的丙酮酸最高可达 8.21±0.30 g/l,而在培养 96 小时后,乙醇产量降低至 2.21±0.24 g/l。这些结果表明通过调节酿酒酵母中的硫胺素合成来提高丙酮酸产量是可行的。