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Linking genetic, metabolic, and phenotypic diversity among Saccharomyces cerevisiae strains using multi-omics associations

机译:使用多组学关联将酿酒酵母菌株之间的遗传,代谢和表型多样性联系起来

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Background The selection of bioengineering platform strains and engineering strategies to improve the stress resistance of Saccharomyces cerevisiae remains a pressing need in bio-based chemical production. Thus, a systematic effort to exploit genotypic and phenotypic diversity to boost yeast's industrial value is still urgently needed. Results We analyzed 5,400 growth curves obtained from 36 S. cerevisiae strains and comprehensively profiled their resistances against 13 industrially relevant stresses. We observed that bioethanol and brewing strains exhibit higher resistance against acidic conditions; however, plant isolates tend to have a wider range of resistance, which may be associated with their metabolome and fluxome signatures in the tricarboxylic acid cycle and fatty acid metabolism. By deep genomic sequencing, we found that industrial strains have more genomic duplications especially affecting transcription factors, showing that they result from disparate evolutionary paths in comparison with the environmental strains, which have more indels, gene deletions, and strain-specific genes. Genome-wide association studies coupled with protein-protein interaction networks uncovered novel genetic determinants of stress resistances. Conclusions These resistance-related engineering targets and strain rankings provide a valuable source for engineering significantly improved industrial platform strains.
机译:背景技术选择生物工程平台菌株和工程策略以提高啤酒酵母的抗逆性仍然是生物基化学生产中的迫切需求。因此,仍然迫切需要系统地努力开发基因型和表型多样性以提高酵母的工业价值。结果我们分析了从36株啤酒酵母中获得的5,400条生长曲线,并全面分析了它们对13种工业相关胁迫的抗性。我们观察到生物乙醇和酿造菌株对酸性条件表现出更高的抗性;然而,植物分离物往往具有更广泛的抗性,这可能与其在三羧酸循环和脂肪酸代谢中的代谢组和通量组特征有关。通过深层基因组测序,我们发现工业菌株具有更多的基因组重复,尤其是影响转录因子,这表明它们与环境菌株相比具有不同的进化路径,而环境菌株具有更多的插入缺失,基因缺失和菌株特异性基因。全基因组关联研究加上蛋白质-蛋白质相互作用网络揭示了抗逆性的新的遗传决定因素。结论这些与阻力有关的工程目标和菌株等级为工程显着改善的工业平台菌株提供了宝贵的资源。

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