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Metabolic Impact of Increased NADH Availability in Saccharomyces cerevisiae

机译:酿酒酵母中NADH可用性增加的代谢影响

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Engineering the level of metabolic cofactors to manipulate metabolic flux is emerging as an attractive strategy for bioprocess applications. We present the metabolic consequences of increasing NADH in the cytosol and the mitochondria of Saccharomyces cerevisiae . In a strain that was disabled in formate metabolism, we either overexpressed the native NAD~(+)-dependent formate dehydrogenase in the cytosol or directed it into the mitochondria by fusing it with the mitochondrial signal sequence encoded by the CYB2 gene. Upon exposure to formate, the mutant strains readily consumed formate and induced fermentative metabolism even under conditions of glucose derepression. Cytosolic overexpression of formate dehydrogenase resulted in the production of glycerol, while when this enzyme was directed into the mitochondria, we observed glycerol and ethanol production. Clearly, these results point toward different patterns of compartmental regulation of redox homeostasis. When pulsed with formate, S. cerevisiae cells growing in a steady state on glucose immediately consumed formate. However, formate consumption ceased after 20 min. Our analysis revealed that metabolites at key branch points of metabolic pathways were affected the most by the genetic perturbations and that the intracellular concentrations of sugar phosphates were specifically affected by time. In conclusion, the results have implications for the design of metabolic networks in yeast for industrial applications.
机译:设计代谢辅助因子的水平以控制代谢通量正在成为生物工艺应用中一种有吸引力的策略。我们介绍了酿酒酵母细胞质和线粒体中NADH含量增加的代谢后果。在不能进行甲酸代谢的菌株中,我们要么在胞质溶胶中过表达天然的NAD〜(+)依赖性甲酸脱氢酶,要么将其与CYB2基因编码的线粒体信号序列融合,从而将其导入线粒体。一旦暴露于甲酸,突变菌株即使在葡萄糖抑制的条件下也容易消耗甲酸并诱导发酵代谢。甲酸脱氢酶的胞质过表达导致甘油的产生,而当该酶直接导入线粒体时,我们观察到甘油和乙醇的产生。显然,这些结果指向氧化还原稳态的不同分区调节模式。当用甲酸盐脉冲时,稳定生长在葡萄糖上的酿酒酵母细胞立即消耗甲酸盐。但是,20分钟后停止食用甲酸。我们的分析表明,代谢途径关键分支点的代谢物受遗传扰动的影响最大,糖磷酸酯的细胞内浓度受时间的影响特别大。总之,这些结果对工业应用中酵母代谢网络的设计具有重要意义。

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