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Metabolic-Flux Profiling of the Yeasts Saccharomyces cerevisiae and Pichia stipitis

机译:酵母酵母和毕赤酵母的代谢通量分析

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The so far largely uncharacterized central carbon metabolism of the yeast Pichia stipitis was explored in batch and glucose-limited chemostat cultures using metabolic-flux ratio analysis by nuclear magnetic resonance. The concomitantly characterized network of active metabolic pathways was compared to those identified in Saccharomyces cerevisiae, which led to the following conclusions. (i) There is a remarkably low use of the non-oxidative pentose phosphate (PP) pathway for glucose catabolism in S. cerevisiae when compared to P. stipitis batch cultures. (ii) Metabolism of P. stipitis batch cultures is fully respirative, which contrasts with the predominantly respiro-fermentative metabolic state of S. cerevisiae. (iii) Glucose catabolism in chemostat cultures of both yeasts is primarily oxidative. (iv) In both yeasts there is significant in vivo malic enzyme activity during growth on glucose. (v) The amino acid biosynthesis pathways are identical in both yeasts. The present investigation thus demonstrates the power of metabolic-flux ratio analysis for comparative profiling of central carbon metabolism in lower eukaryotes. Although not used for glucose catabolism in batch culture, we demonstrate that the PP pathway in S. cerevisiae has a generally high catabolic capacity by overexpressing the Escherichia coli transhydrogenase UdhA in phosphoglucose isomerase-deficient S. cerevisiae.
机译:利用核磁共振的代谢通量比分析,以分批和葡萄糖有限的恒化器培养物的形式探索了迄今为止为止尚未鉴定的酵母“毕赤酵母”的中央碳代谢。将同时表征的活性代谢途径网络与在酿酒酵母中鉴定的网络进行了比较,得出以下结论。 (i)非氧化性戊糖磷酸(PP)途径在 S中的葡萄糖分解代谢中的使用率非常低。与 P相比。树干炎分批培养。 (ii) P的代谢。脂肪培养分批培养是完全呼吸的,这与 S的主要呼吸发酵代谢状态形成对比。啤酒酵母。 (iii)两种酵母的恒化培养物中的葡萄糖分解代谢主要是氧化性的。 (iv)在两种酵母中,在葡萄糖上生长期间均具有显着的体内苹果酸酶活性。 (v)两种酵母的氨基酸生物合成途径相同。因此,本研究证明了代谢通量比分析对于较低等真核生物中中心碳代谢的比较谱分析的作用。尽管不用于批量培养中的葡萄糖分解代谢,但我们证明了 S中的PP途径。在磷酸葡萄糖异构酶缺陷的 S中过表达大肠杆菌转氢酶UdhA可以使啤酒酵母具有较高的分解代谢能力。啤酒酵母

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