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Laboratory evolution reveals regulatory and metabolic trade-offs of glycerol utilization in Saccharomyces cerevisiae

机译:实验室演变揭示了甘油利用酿酒酵母的监管和代谢权衡

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Most microbial species, including model eukaryote Saccharomyces cerevisiae, possess genetic capability to utilize many alternative nutrient sources. Yet, it remains an open question whether these manifest into assimilatory phenotypes. Despite possessing all necessary pathways, S. cerevisiae grows poorly or not at all when glycerol is the sole carbon source. Here we discover, through multiple evolved lineages, genetic determinants underlying glycerol catabolism and the associated fitness trade-offs. Most evolved lineages adapted through mutations in the HOG pathway, but showed hampered osmotolerance. In the other lineages, we find that only three mutations cause the improved phenotype. One of these contributes counter-intuitively by decoupling the TCA cycle from oxidative phosphorylation, and thereby hampers ethanol utilization. Transcriptomics, proteomics and metabolomics analysis of the re-engineered strains affirmed the causality of the three mutations at molecular level. Introduction of these mutations resulted in improved glycerol utilization also in industrial strains. Our findings not only have a direct relevance for improving glycerol-based bioprocesses, but also illustrate how a metabolic pathway can remain unexploited due to fitness trade-offs in other, ecologically important, traits.
机译:大多数微生物物种,包括模型真核生物酿酒酵母酿酒酵母,具有利用许多替代营养来源的遗传能力。然而,它仍然是这些表现为同性化表型的开放性问题。尽管具有所有必要的途径,但酿酒酵母在甘油是唯一的碳源时或根本不生长。在这里,我们发现,通过多种进化的谱系,甘油分解代谢的遗传决定因素和相关的健身权衡。大多数进化的谱系通过猪途径中的突变调整,但显示出阻碍的渗透。在其他谱系中,我们发现只有三个突变导致改善的表型。其中一个通过从氧化磷酸化与TCA循环分离,从而阻碍乙醇利用而反向直观。转录组织,重新设计菌株的蛋白质组学和代谢组科分析肯定了分子水平的三个突变的因果关系。引入这些突变导致工业菌株中的甘油利用改善。我们的发现不仅具有改善基于甘油的生物处理的直接相关性,而且还说明了由于其他生态学,重要的性状的健身权衡,代谢途径如何仍然无法爆发。

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