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A yeast living ancestor reveals the origin of genomic introgressions

机译:酵母生物祖先揭示了基因组血栓增的起源

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摘要

A yeast clonal descendant of an ancient hybridization event is identified and sheds light on the early evolution of the Saccharomyces cerevisiae Alpechin lineage and its abundant Saccharomyces paradoxus introgressions.Genome introgressions drive evolution across the animal(1), plant(2) and fungal(3) kingdoms. Introgressions initiate from archaic admixtures followed by repeated backcrossing to one parental species. However, how introgressions arise in reproductively isolated species, such as yeast(4), has remained unclear. Here we identify a clonal descendant of the ancestral yeast hybrid that founded the extant Saccharomyces cerevisiae Alpechin lineage(5), which carries abundant Saccharomyces paradoxus introgressions. We show that this clonal descendant, hereafter defined as a 'living ancestor', retained the ancestral genome structure of the first-generation hybrid with contiguous S. cerevisiae and S. paradoxus subgenomes. The ancestral first-generation hybrid underwent catastrophic genomic instability through more than a hundred mitotic recombination events, mainly manifesting as homozygous genome blocks generated by loss of heterozygosity. These homozygous sequence blocks rescue hybrid fertility by restoring meiotic recombination and are the direct origins of the introgressions present in the Alpechin lineage. We suggest a plausible route for introgression evolution through the reconstruction of extinct stages and propose that genome instability allows hybrids to overcome reproductive isolation and enables introgressions to emerge.
机译:鉴定了古代杂交事件的酵母克隆后代,并阐明了酿酒酵母的早期演变的酿酒酵母的早期演变,其丰富的糖酵解血清血症血糖血糖血糖。Genome introgroustions穿过动物(1),植物(2)和真菌的进化(3 )王国。斜突从古老的混合中发起,然后重复回复一个家长物种。然而,在生殖孤立的物种(例如酵母(4))中出现的速增收仍然不清楚。在这里,我们鉴定了祖先酵母杂交的克隆后代,该伴有酿酒酵母的酿酒酵母血吸素(5)族族血氨基素血管素(5)。我们表明这种克隆后代,此后定义为“生活祖先”,保留了具有连续的S.宫内节和悖论亚因子的第一代杂种的祖先基因组结构。祖先的第一代杂交杂交经历了灾难性的基因组不稳定性,通过一百多个有丝分子重组事件,主要表现为通过杂合子丧失产生的纯合基因组块。这些纯合子序列通过恢复减数分裂重组而抵抗杂交生育能力,并且是阿尔佩辛谱系中存在的血栓增的直接起源。我们建议通过重建灭绝阶段的迟发演变的合理途径,并提出基因组不稳定性允许杂种克服生殖隔离,并能够出现血液渗入。

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  • 来源
    《Nature》 |2020年第7834期|420-425|共6页
  • 作者单位

    Univ Cote dAzur CNRS INSERM IRCAN Nice France;

    Univ Cote dAzur CNRS INSERM IRCAN Nice France;

    Univ Cote dAzur CNRS INSERM IRCAN Nice France;

    Univ Cote dAzur CNRS INSERM IRCAN Nice France;

    Norwegian Univ Life Sci UMB Dept Anim & Aquacultural Sci As Norway|Univ Gothenburg Dept Chem & Mol Biol Gothenburg Sweden;

    Univ Gothenburg Dept Chem & Mol Biol Gothenburg Sweden;

    Univ Cote dAzur CNRS INSERM IRCAN Nice France;

    Univ Cote dAzur CNRS INSERM IRCAN Nice France;

    Univ Strasbourg CNRS GMGM UMR 7156 Strasbourg France;

    Univ Pisa Dept Biol Pisa Italy|CNR Inst Biophys Pisa Italy;

    Univ Cote dAzur CNRS INSERM IRCAN Nice France|CHU Nice Dept Genet Nice France;

    Univ Gothenburg Dept Chem & Mol Biol Gothenburg Sweden;

    Univ Cote dAzur CNRS INSERM IRCAN Nice France;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
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