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S. cerevisiae x S. eubayanus interspecific hybrid, the best of both worlds and beyond

机译:S. Cerevisiae X S. Zubayanus三种杂交,两个世界和超越

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Saccharomyces pastorianus lager-brewing yeasts have descended from natural hybrids of S. cerevisiae and S. eubayanus. Their alloploidy has undoubtedly contributed to successful domestication and industrial exploitation. To understand the early events that have led to the predominance of S. pastorianus as lager-brewing yeast, an interspecific hybrid between S. cerevisiae and S. eubayanus was experimentally constructed. Alloploidy substantially improved the performance of the S. cerevisiae x S. eubayanus hybrid as compared to either parent regarding two cardinal features of brewing yeasts: tolerance to low temperature and oligosaccharide utilization. The hybrid's S. eubayanus subgenome conferred better growth rates and biomass yields at low temperature, both on glucose and on maltose. Conversely, the ability of the hybrid to consume maltotriose, which was absent in the S. eubayanus CBS12357 type strain, was inherited from its S. cerevisiae parent. The S. cerevisiae x S. eubayanus hybrid even outperformed its parents, a phenomenon known as transgression, suggesting that fast growth at low temperature and oligosaccharide utilization may have been key selective advantages of the natural hybrids in brewing environments. To enable sequence comparisons of the parental and hybrid strains, the genome of S. eubayanus CBS12357 type strain (Patagonian isolate) was resequenced, resulting in an improved publicly available sequence assembly.
机译:酿酒酵母酿造酿造酵母从S.Cerevisiae和S. Zubayanus的天然杂交种中取消了。他们的Alloplody无疑是成功的驯化和工业利用。要了解导致S. Pastorianus的早期事件作为Lager-Brewing酵母,在实验构建了S.Cerevisiae和S. eubayanus之间的间隙杂交。与酿造酵母的两种基本特征的父母相比,Alloplody显着改善了S.Cerevisiae X S.肠霉素的性能。对低温和低聚糖利用的耐受性。杂交的S. eubayanus亚基因组在葡萄糖和麦芽糖上赋予低温的更好的生长速率和生物量产量。相反,杂交地消耗麦芽酮的能力,其在S. eubayanus CBS12357型菌株中缺席,从其S.Cerevisiae父母中遗传。 S.Cerevisiae X S. eubayanus杂种甚至优于其父母,这是一种称为违规的现象,表明低温和低聚糖利用的快速增长可能是自然杂交种在酿造环境中的关键选择性优势。为了使父母和杂交菌株的序列比较,RSubayanus CBS12357型菌株(基面分离物)的基因组被重新开始,导致公开可用的序列组件改进。

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