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中的非整倍性与乙醇耐受性

Aneuploidy and Ethanol Tolerance in .

作者信息

Morard Miguel, Macías Laura G, Adam Ana C, Lairón-Peris María, Pérez-Torrado Roberto, Toft Christina, Barrio Eladio

机构信息

Departament de Genètica, Universitat de València, Valencia, Spain.

Departamento de Biotecnología, Instituto de Agroquímica y Tecnología de los Alimentos (IATA), CSIC, Valencia, Spain.

出版信息

Front Genet. 2019 Feb 12;10:82. doi: 10.3389/fgene.2019.00082. eCollection 2019.

DOI:10.3389/fgene.2019.00082
PMID:30809248
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6379819/
Abstract

Response to environmental stresses is a key factor for microbial organism growth. One of the major stresses for yeasts in fermentative environments is ethanol. is the most tolerant species in its genus, but intraspecific ethanol-tolerance variation exists. Although, much effort has been done in the last years to discover evolutionary paths to improve ethanol tolerance, this phenotype is still hardly understood. Here, we selected five strains with different ethanol tolerances, and used comparative genomics to determine the main factors that can explain these phenotypic differences. Surprisingly, the main genomic feature, shared only by the highest ethanol-tolerant strains, was a polysomic chromosome III. Transcriptomic data point out that chromosome III is important for the ethanol stress response, and this aneuploidy can be an advantage to respond rapidly to ethanol stress. We found that chromosome III copy numbers also explain differences in other strains. We show that removing the extra chromosome III copy in an ethanol-tolerant strain, returning to euploidy, strongly compromises its tolerance. Chromosome III aneuploidy appears frequently in ethanol-tolerance evolution experiments, and here, we show that aneuploidy is also used by natural strains to enhance their ethanol tolerance.

摘要

对环境压力的响应是微生物生长的关键因素。发酵环境中酵母面临的主要压力之一是乙醇。[此处原文似乎缺失具体物种名称]是其所属属中耐受性最强的物种,但种内存在乙醇耐受性差异。尽管在过去几年中人们付出了很多努力来探索提高乙醇耐受性的进化途径,但这种表型仍然难以理解。在这里,我们选择了五株具有不同乙醇耐受性的菌株,并使用比较基因组学来确定能够解释这些表型差异的主要因素。令人惊讶的是,仅在乙醇耐受性最高的菌株中共享的主要基因组特征是一条多体染色体III。转录组数据表明染色体III对乙醇应激反应很重要,这种非整倍性可能是对乙醇应激快速做出反应的一个优势。我们发现染色体III的拷贝数也能解释其他菌株的差异。我们表明,在一个乙醇耐受性菌株中去除额外的染色体III拷贝,使其恢复为整倍体,会严重损害其耐受性。染色体III非整倍性在乙醇耐受性进化实验中经常出现,在这里,我们表明非整倍性也被自然菌株用来增强它们的乙醇耐受性。

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