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Extensive heterosis in growth of yeast hybrids is explained by a combination ofgenetic models

机译:酵母杂种生长的广泛杂种优势是由基因模型

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摘要

Heterosis, also known as hybrid vigor, is the superior performance of a heterozygous hybrid relative to its homozygous parents. Despite the scientific curiosity of this phenotypic phenomenon and its significance for food production in agriculture, its genetic basis is insufficiently understood. Studying heterosis in yeast can potentially yield insights into its genetic basis, can allow one to test the different hypotheses that have been proposed to explain the phenomenon and allows better understanding of how to take advantage of this phenomenon to enhance food production. We therefore crossed 16 parental yeast strains to form 120 yeast hybrids, and measured their growth rates under five environmental conditions. A considerable amount of dominant genetic variation was found in growth performance, and heterosis was measured in 35% of the hybrid–condition combinations. Despite previous reports of correlations between heterosis and measures of sequence divergence between parents, we detected no such relationship. We used several analyses to examine which genetic model might explain heterosis. We found that dominance complementation of recessive alleles, overdominant interactions within loci and epistatic interactions among loci each contribute to heterosis. We concluded that in yeast heterosis is a complex phenotype created by the combined contribution ofdifferent genetic interactions.
机译:杂种优势,也称为杂种优势,是杂合杂种相对于其纯合亲本的优越表现。尽管对这种表型现象有科学的好奇心,并且对农业粮食生产具有重要意义,但对其遗传基础的了解还不够。研究酵母中的杂种优势可以潜在地洞察其遗传基础,可以使人们检验已经提出的解释该现象的不同假设,并可以更好地理解如何利用这一现象来提高食品产量。因此,我们将16个亲本酵母菌株杂交,形成120个酵母杂种,并在五个环境条件下测量了它们的生长速率。在生长性能中发现了大量显性遗传变异,在35%的混合条件组合中测得杂种优势。尽管以前有报道说杂种优势与父母之间的序列差异之间存在相关性,但我们没有发现这种关系。我们使用了几种分析方法来检验哪种遗传模型可以解释杂种优势。我们发现隐性等位基因的优势互补,基因座内的显性相互作用以及基因座间的上位性相互作用各自促成杂种优势。我们得出的结论是,在酵母中杂种优势是一种复杂的表型,由不同的遗传相互作用。

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