G3 (Bethesda). 2011 Sep;1(4):263-81. doi: 10.1534/g3.111.000422. Epub 2011 Sep 1.
The genetic basis of the phenotypic diversity of yeast is still poorly understood. Wine yeast strains have specific abilities to grow and ferment under stressful conditions compared with other strains, but the genetic basis underlying these traits is unknown. Understanding how sequence variation influences such phenotypes is a major challenge to address adaptation mechanisms of wine yeast. We aimed to identify the genetic basis of fermentation traits and gain insight into their relationships with variations in gene expression among yeast strains. We combined fermentation trait QTL mapping and expression profiling of fermenting cells in a segregating population from a cross between a wine yeast derivative and a laboratory strain. We report the identification of QTL for various fermentation traits (fermentation rates, nitrogen utilization, metabolites production) as well as expression QTL (eQTL). We found that many transcripts mapped to several eQTL hotspots and that two of them overlapped with QTL for fermentation traits. A QTL controlling the maximal fermentation rate and nitrogen utilization overlapping with an eQTL hotspot was dissected. We functionally demonstrated that an allele of the ABZ1 gene, localized in the hotspot and involved in p-aminobenzoate biosynthesis, controls the fermentation rate through modulation of nitrogen utilization. Our data suggest that the laboratory strain harbors a defective ABZ1 allele, which triggers strong metabolic and physiological alterations responsible for the generation of the eQTL hotspot. They also suggest that a number of gene expression differences result from some alleles that trigger major physiological disturbances.
酵母表型多样性的遗传基础仍知之甚少。与其他菌株相比,葡萄酒酵母菌株具有在应激条件下生长和发酵的特定能力,但这些特性的遗传基础尚不清楚。了解序列变异如何影响这些表型是解决葡萄酒酵母适应机制的主要挑战。我们旨在确定发酵特性的遗传基础,并深入了解它们与酵母菌株之间基因表达变化的关系。我们在一个来自葡萄酒酵母衍生物和实验室菌株杂交的分离群体中,结合发酵特性 QTL 作图和发酵细胞的表达谱分析。我们报告了各种发酵特性(发酵速度、氮利用、代谢产物产生)以及表达 QTL(eQTL)的 QTL 鉴定。我们发现许多转录本映射到多个 eQTL 热点,其中两个与发酵特性 QTL 重叠。控制最大发酵速度和氮利用的 QTL 与 eQTL 热点重叠,对其进行了剖析。我们通过功能证明,位于热点并参与对氨基苯甲酸生物合成的 ABZ1 基因的一个等位基因通过调节氮利用来控制发酵速度。我们的数据表明,实验室菌株携带缺陷的 ABZ1 等位基因,该等位基因触发强烈的代谢和生理变化,导致 eQTL 热点的产生。它们还表明,一些等位基因引发了主要的生理干扰,导致了许多基因表达的差异。