Genomic tales of wine yeasts: from domestication to functional innovation.

IF 3.5 4区 生物学 Q3 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Carmen Becerra-Rodríguez, Hugo Devillers, Jean-Luc Legras, Virginie Galeote, Frédéric Bigey, Sylvie Dequin, Souhir Marsit
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Abstract

Over the last decades, the yeast Saccharomyces cerevisiae has emerged as a key model for studying microbial domestication, particularly in the context of winemaking. The recent surge of population genomic data, encompassing thousands of genomes, has profoundly reshaped our understanding of the evolutionary history and adaptive potential of wine yeasts. Despite arising from a domestication bottleneck, wine yeasts form a well-structured population and display striking genome dynamism. Extensive variation in heterozygosity, aneuploidy, structural variations, and gene content may provide a reservoir of genomic variation that contributes to adaptive potential in the harsh winemaking environment. While some genetic variation and genome restructuring contribute to adaptation, gene flow through hybridization, introgression and especially horizontal gene transfer has emerged as a major driver of functional innovation. These findings establish wine yeasts as a powerful model to link genome evolution with adaptation to anthropogenic environments. They also provide a foundation for the rational improvement of industrial strains through approaches such as quantitative trait locus mapping, adaptive laboratory evolution and genome-wide association studies. Extending these frameworks to non-Saccharomyces species and integrating genomic, functional and ecological data will be key to understanding and engineering microbial communities, to face the modern winemaking challenges.

葡萄酒酵母的基因组故事:从驯化到功能创新。
在过去的几十年里,酿酒酵母已经成为研究微生物驯化的关键模型,特别是在酿酒的背景下。最近,包含数千个基因组的种群基因组数据激增,深刻地重塑了我们对葡萄酒酵母的进化史和适应潜力的理解。尽管出现了驯化瓶颈,葡萄酒酵母形成了一个结构良好的种群,并显示出惊人的基因组活力。杂合性、非整倍性、结构变异和基因含量的广泛变异可能提供了一个基因组变异库,有助于在恶劣的酿酒环境中适应潜力。虽然一些遗传变异和基因组重组有助于适应,但通过杂交,渗入,特别是水平基因转移的基因流动已成为功能创新的主要驱动力。这些发现建立了葡萄酒酵母作为一个强大的模型,将基因组进化与对人类环境的适应联系起来。通过数量性状位点定位、适应性实验室进化和全基因组关联研究等方法,为工业菌株的合理改良提供基础。将这些框架扩展到非酵母菌物种,并整合基因组,功能和生态数据将是理解和工程微生物群落的关键,以面对现代酿酒挑战。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
FEMS yeast research
FEMS yeast research 生物-生物工程与应用微生物
CiteScore
5.70
自引率
6.20%
发文量
54
审稿时长
1 months
期刊介绍: FEMS Yeast Research offers efficient publication of high-quality original Research Articles, Mini-reviews, Letters to the Editor, Perspectives and Commentaries that express current opinions. The journal will select for publication only those manuscripts deemed to be of major relevance to the field and generally will not consider articles that are largely descriptive without insights on underlying mechanism or biology. Submissions on any yeast species are welcome provided they report results within the scope outlined below and are of significance to the yeast field.
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