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13 C-metabolic flux analysis of ethanol-assimilating Saccharomyces cerevisiae for S -adenosyl- l -methionine production

机译:乙醇同化酿酒酵母生产S-腺苷-1-甲硫氨酸的13 C-代谢通量分析

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Saccharomyces cerevisiae is a host for the industrial production of S-adenosyl-l-methionine (SAM), which has been widely used in pharmaceutical and nutritional supplement industries. It has been reported that the intracellular SAM content in S. cerevisiae can be improved by the addition of ethanol during cultivation. However, the metabolic state in ethanol-assimilating S. cerevisiae remains unclear. In this study, 13C-metabolic flux analysis (13C-MFA) was conducted to investigate the metabolic regulation responsible for the high SAM production from ethanol. The comparison between the metabolic flux distributions of central carbon metabolism showed that the metabolic flux levels of the tricarboxylic acid cycle and glyoxylate shunt in the ethanol culture were significantly higher than that of glucose. Estimates of the ATP balance from the 13C-MFA data suggested that larger amounts of excess ATP was produced from ethanol via increased oxidative phosphorylation. The finding was confirmed by the intracellular ATP level under ethanol-assimilating condition being similarly higher than glucose. These results suggest that the enhanced ATP regeneration due to ethanol assimilation was critical for the high SAM accumulation.
机译:酿酒酵母是S-腺苷-1-蛋氨酸(SAM)的工业生产的宿主,S-腺苷-1-蛋氨酸已被广泛用于制药和营养补充品行业。据报道,在培养过程中加入乙醇可以提高酿酒酵母中细胞内SAM的含量。然而,乙醇同化啤酒酵母的代谢状态仍不清楚。在这项研究中,进行了13C-代谢通量分析(13C-MFA),以研究负责从乙醇中大量生产SAM的代谢调节。中心碳代谢的代谢通量分布之间的比较表明,乙醇培养物中三羧酸循环和乙醛酸分流的代谢通量水平显着高于葡萄糖。根据13C-MFA数据估算的ATP平衡表明,乙醇通过增加的氧化磷酸化作用产生了大量的过量ATP。乙醇同化条件下的细胞内ATP水平同样高于葡萄糖,从而证实了这一发现。这些结果表明,由于乙醇吸收而增强的ATP再生对于高SAM积累至关重要。

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