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首页> 外文期刊>Applied Microbiology >A Loss-of-Function Mutation in the PAS Kinase Rim15p Is Related to Defective Quiescence Entry and High Fermentation Rates of Saccharomyces cerevisiae Sake Yeast Strains
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A Loss-of-Function Mutation in the PAS Kinase Rim15p Is Related to Defective Quiescence Entry and High Fermentation Rates of Saccharomyces cerevisiae Sake Yeast Strains

机译:PAS激酶Rim15p的功能丧失突变与啤酒酵母清酒酵母的缺陷静态进入和高发酵率有关。

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Sake yeast cells have defective entry into the quiescent state, allowing them to sustain high fermentation rates. To reveal the underlying mechanism, we investigated the PAS kinase Rim15p, which orchestrates initiation of the quiescence program in Saccharomyces cerevisiae . We found that Rim15p is truncated at the carboxyl terminus in modern sake yeast strains as a result of a frameshift mutation. Introduction of this mutation or deletion of the full-length RIM15 gene in a laboratory strain led to a defective stress response, decreased synthesis of the storage carbohydrates trehalose and glycogen, and impaired G_(1) arrest, which together closely resemble the characteristic phenotypes of sake yeast. Notably, expression of a functional RIM15 gene in a modern sake strain suppressed all of these phenotypes, demonstrating that dysfunction of Rim15p prevents sake yeast cells from entering quiescence. Moreover, loss of Rim15p or its downstream targets Igo1p and Igo2p remarkably improved the fermentation rate in a laboratory strain. This finding verified that Rim15p-mediated entry into quiescence plays pivotal roles in the inhibition of ethanol fermentation. Taken together, our results suggest that the loss-of-function mutation in the RIM15 gene may be the key genetic determinant of the increased ethanol production rates in modern sake yeast strains.
机译:清酒酵母细胞无法进入静止状态,因此可以维持较高的发酵速率。为了揭示潜在的机制,我们研究了PAS激酶Rim15p,它协调了酿酒酵母中静态程序的启动。我们发现,由于移码突变,在现代清酒酵母菌株中,Rim15p在羧基末端被截短。在实验室菌株中引入这种突变或全长RIM15基因的缺失导致应激反应缺陷,贮藏碳水化合物海藻糖和糖原的合成减少以及G_(1)阻滞受损,两者非常相似于清酒酵母。值得注意的是,现代清酒品系中功能性RIM15基因的表达抑制了所有这些表型,表明Rim15p的功能障碍阻止了清酒酵母细胞进入静止状态。此外,Rim15p或其下游靶标Igo1p和Igo2p的缺失显着提高了实验室菌株的发酵速率。该发现证实了Rim15p介导的进入静止在抑制乙醇发酵中起关键作用。两者合计,我们的结果表明,RIM15基因的功能丧失突变可能是现代清酒酵母菌株中乙醇生产率提高的关键遗传决定因素。

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