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Fermentation of Xylose Causes Inefficient Metabolic State Due to Carbon/Energy Starvation and Reduced Glycolytic Flux in Recombinant Industrial Saccharomyces cerevisiae

机译:木糖的发酵由于重组的工业酿酒酵母中的碳/能量饥饿和糖酵解通量的减少而导致代谢效率低下。

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摘要

In the present study, comprehensive, quantitative metabolome analysis was carried out on the recombinant glucose/xylose-cofermenting S. cerevisiae strain MA-R4 during fermentation with different carbon sources, including glucose, xylose, or glucose/xylose mixtures. Capillary electrophoresis time-of-flight mass spectrometry was used to determine the intracellular pools of metabolites from the central carbon pathways, energy metabolism pathways, and the levels of twenty amino acids. When xylose instead of glucose was metabolized by MA-R4, glycolytic metabolites including 3- phosphoglycerate, 2- phosphoglycerate, phosphoenolpyruvate, and pyruvate were dramatically reduced, while conversely, most pentose phosphate pathway metabolites such as sedoheptulose 7- phosphate and ribulose 5-phosphate were greatly increased. These results suggest that the low metabolic activity of glycolysis and the pool of pentose phosphate pathway intermediates are potential limiting factors in xylose utilization. It was further demonstrated that during xylose fermentation, about half of the twenty amino acids declined, and the adenylate/guanylate energy charge was impacted due to markedly decreased adenosine triphosphate/adenosine monophosphate and guanosine triphosphate/guanosine monophosphate ratios, implying that the fermentation of xylose leads to an inefficient metabolic state where the biosynthetic capabilities and energy balance are severely impaired. In addition, fermentation with xylose alone drastically increased the level of citrate in the tricarboxylic acid cycle and increased the aromatic amino acids tryptophan and tyrosine, strongly supporting the view that carbon starvation was induced. Interestingly, fermentation with xylose alone also increased the synthesis of the polyamine spermidine and its precursor S-adenosylmethionine. Thus, differences in carbon substrates, including glucose and xylose in the fermentation medium, strongly influenced the dynamic metabolism of MA-R4. These results provide a metabolic explanation for the low ethanol productivity on xylose compared to glucose.
机译:在本研究中,在重组葡萄糖/木糖发酵酿酒酵母菌株MA-R4的发酵过程中,使用不同的碳源,包括葡萄糖,木糖或葡萄糖/木糖混合物,进行了全面,定量的代谢组分析。使用毛细管电泳飞行时间质谱仪从中心碳途径,能量代谢途径和二十种氨基酸的水平确定代谢物的细胞内池。当MA-R4代谢木糖而不是葡萄糖时,包括3-磷酸甘油酸,2-磷酸甘油酸,磷酸烯醇丙酮酸和丙酮酸的糖酵解代谢物显着减少,而相反,大多数戊糖磷酸途径的代谢物,例如七磷酸七庚酯和5-磷酸核糖。被大大增加。这些结果表明,糖酵解的低代谢活性和戊糖磷酸途径中间体的库是木糖利用的潜在限制因素。进一步证明,在木糖发酵过程中,二十个氨基酸中约有一半下降,并且腺苷三磷酸/腺苷一磷酸和鸟苷三磷酸/鸟苷一磷酸的比例明显降低,从而影响了腺苷酸/鸟苷酸的能量电荷,这意味着木糖发酵导致低效率的代谢状态,从而严重损害生物合成能力和能量平衡。另外,仅用木糖发酵大大增加了三羧酸循环中柠檬酸盐的水平,并增加了芳香族氨基酸色氨酸和酪氨酸,强烈支持了诱导碳饥饿的观点。有趣的是,仅用木糖发酵也增加了多胺亚精胺及其前体S-腺苷甲硫氨酸的合成。因此,发酵培养基中包括葡萄糖和木糖在内的碳底物的差异强烈影响了MA-R4的动态代谢。这些结果提供了与葡萄糖相比木糖上乙醇生产率低的代谢解释。

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