SPO, Univ Montpellier, INRAE, Montpellier SupAgro, Montpellier, France.
MISTEA, INRAE, Montpellier SupAgro, Montpellier, France.
Sci Rep. 2020 Feb 7;10(1):2162. doi: 10.1038/s41598-020-57857-3.
The yeast Saccharomyces cerevisiae is an attractive industrial microorganism for the production of foods and beverages as well as for various bulk and fine chemicals, such as biofuels or fragrances. Building blocks for these biosyntheses are intermediates of yeast central carbon metabolism (CCM), whose intracellular availability depends on balanced single reactions that form metabolic fluxes. Therefore, efficient product biosynthesis is influenced by the distribution of these fluxes. We recently demonstrated great variations in CCM fluxes between yeast strains of different origins. However, we have limited understanding of flux modulation and the genetic basis of flux variations. In this study, we investigated the potential of quantitative trait locus (QTL) mapping to elucidate genetic variations responsible for differences in metabolic flux distributions (fQTL). Intracellular metabolic fluxes were estimated by constraint-based modelling and used as quantitative phenotypes, and differences in fluxes were linked to genomic variations. Using this approach, we detected four fQTLs that influence metabolic pathways. The molecular dissection of these QTLs revealed two allelic gene variants, PDB1 and VID30, contributing to flux distribution. The elucidation of genetic determinants influencing metabolic fluxes, as reported here for the first time, creates new opportunities for the development of strains with optimized metabolite profiles for various applications.
酿酒酵母是一种有吸引力的工业微生物,可用于生产食品和饮料以及各种大宗和精细化学品,如生物燃料或香料。这些生物合成的构建块是酵母中心碳代谢(CCM)的中间体,其细胞内可用性取决于形成代谢通量的平衡单反应。因此,有效的产物生物合成受到这些通量分布的影响。我们最近证明了不同来源的酵母菌株之间 CCM 通量存在很大差异。然而,我们对通量调节和通量变化的遗传基础的理解有限。在这项研究中,我们研究了数量性状位点(QTL)作图的潜力,以阐明负责代谢通量分布差异的遗传变异(fQTL)。通过基于约束的建模来估计细胞内代谢通量,并将其用作定量表型,并且将通量差异与基因组变异联系起来。使用这种方法,我们检测到了四个影响代谢途径的 fQTL。这些 QTL 的分子剖析揭示了两个等位基因变异体 PDB1 和 VID30,它们有助于通量分布。首次报道了影响代谢通量的遗传决定因素的阐明,为开发具有优化代谢物谱的菌株以用于各种应用创造了新的机会。