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具有超显性和上位性效应组合的基因是酿酒酵母在高温下生长杂种优势的基础。

Genes with a Combination of Over-Dominant and Epistatic Effects Underlie Heterosis in Growth of Saccharomyces cerevisiae at High Temperature.

作者信息

Shapira Rachel, David Lior

机构信息

Department of Animal Sciences, R. H. Smith Faculty of Agriculture, Food and Environment, The Hebrew University of Jerusalem Rehovot, Israel.

出版信息

Front Genet. 2016 May 4;7:72. doi: 10.3389/fgene.2016.00072. eCollection 2016.

Abstract

Heterosis describes a phenotypic phenomenon of hybrid superiority over its homozygous parents. It is a genetically intriguing phenomenon with great importance for food production. Also called hybrid-vigor, heterosis is created by non-additive effects of genes in a heterozygous hybrid made by crossing two distinct homozygous parents. Few models have been proposed to explain how the combination of parental genes creates an exceptional hybrid performance. Over-dominant mode of inheritance is an attractive model since a single gene can potentially create the heterotic effect, but only a few such loci have been identified. To a collection of 120 hybrids, made by crossing 16 divergent Saccharomyces cerevisiae yeast strains, we applied a method for mapping heterozygous loci that non-additively contribute to heterotic growth at 37°. Among 803 candidate loci that were mapped, five were tested for their heterotic effect by analyzing backcrosses and F2 populations in a specific hybrid background. Consistently with the many mapped loci, specific analyses confirmed the minor heterotic effect of the tested candidate loci. Allele-replacement analyses of one gene, AEP3, further supported its heterotic effect. In addition to over-dominant effects, the contribution of epistasis to heterosis was evident from F2 population and allele-replacement analyses. Pairs of over-dominant genes contributed synergistically to heterosis. We show that minor over-dominant effects of multiple genes can combine to condition heterosis, similarly to loci affecting other quantitative traits. Furthermore, by finding of epistatic interactions between loci that each of them individually has an over-dominant effect on heterosis, we demonstrate how hybrid advantage could benefit from a synergistic combination of two interaction types (over-dominant and synergistic epistatic). Thus, by portraying the underlying genetic complexity, these findings advance our understanding of heterosis.

摘要

杂种优势描述了杂种相对于其纯合亲本的表型优势现象。这是一种在遗传学上引人入胜的现象,对粮食生产具有重要意义。杂种优势也被称为杂种活力,它是由两个不同纯合亲本杂交产生的杂合杂种中基因的非加性效应所导致的。很少有模型被提出来解释亲本基因的组合是如何产生优异的杂种表现的。超显性遗传模式是一个有吸引力的模型,因为单个基因就有可能产生杂种优势效应,但目前只鉴定出了少数这样的基因座。我们对由16个不同的酿酒酵母菌株杂交产生的120个杂种进行了研究,应用了一种绘制杂合基因座的方法,这些基因座对37℃下的杂种优势生长有非加性贡献。在绘制出的803个候选基因座中,通过在特定杂种背景下分析回交和F2群体,对其中5个基因座的杂种优势效应进行了测试。与许多已绘制的基因座一致,具体分析证实了所测试候选基因座的微小杂种优势效应。对一个基因AEP3的等位基因替换分析进一步支持了其杂种优势效应。除了超显性效应外,上位性对杂种优势的贡献从F2群体和等位基因替换分析中也很明显。成对的超显性基因对杂种优势有协同贡献。我们表明,多个基因的微小超显性效应可以结合起来决定杂种优势,这与影响其他数量性状的基因座类似。此外,通过发现每个基因座单独对杂种优势有超显性效应的基因座之间的上位性相互作用,我们证明了杂种优势如何从两种相互作用类型(超显性和协同上位性)的协同组合中受益。因此,通过描绘潜在的遗传复杂性,这些发现推进了我们对杂种优势的理解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/532c/4854886/797f79658e7a/fgene-07-00072-g0001.jpg

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