Key Laboratory of Systems Microbial Biotechnology, Tianjin Institute of Industrial Biotechnology, Chinese Academy of Sciences, Tianjin 300308, China.
University of Chinese Academy of Sciences, Beijing 100049, China.
FEMS Yeast Res. 2018 Aug 1;18(5). doi: 10.1093/femsyr/foy045.
TALENs-assisted multiplex editing (TAME) toolbox was previously established and used to successfully enhance ethanol stress tolerance of Saccharomyces cerevisiae laboratory strain. Here, the TAME toolbox was harnessed to improve and elucidate stress tolerances of S. cerevisiae industrial strain. One osmotolerant strain and one thermotolerant strain were selected from the mutant library generated by TAME at corresponding stress conditions, and exhibited 1.2-fold to 1.3-fold increases of fermentation capacities, respectively. Genome resequencing uncovered genomic alterations in the selected stress-tolerant strains, suggesting that cell wall and membrane-related proteins might be major factors behind improved tolerances of yeast to different stresses. Furthermore, amplified mitochondrial DNA might also have an important impact on increased stress tolerance. Unexpectedly, none of predesigned target potential TALENs modification sites showed any genomic variants in sequenced genomes of the selected strains, implicating that the improved stress tolerances might be due to indirect impacts of genome editing via TALENs rather than introducing genomic variants at potential target sites. Our findings not only confirmed TAME could be a useful tool to accelerate the breeding of industrial strain with multiple stress tolerance, but also supported the previous understandings of the complicated mechanisms of multiple stress tolerance in yeast.
TALEN 辅助多重编辑(TAME)工具包此前已建立并用于成功提高酿酒酵母实验室菌株的乙醇胁迫耐受性。在此,TAME 工具包被用于改进和阐明酿酒酵母工业菌株的胁迫耐受性。在相应的胁迫条件下,从 TAME 产生的突变文库中选择了一株耐渗压菌株和一株耐热菌株,它们的发酵能力分别提高了 1.2 倍至 1.3 倍。基因组重测序揭示了所选耐胁迫菌株的基因组改变,表明细胞壁和膜相关蛋白可能是酵母对不同胁迫耐受性提高的主要因素。此外,扩增的线粒体 DNA 也可能对提高胁迫耐受性有重要影响。出乎意料的是,在所选菌株测序基因组中,没有一个预定的潜在 TALENs 修饰位点显示出任何基因组变异,这表明胁迫耐受性的提高可能是由于 TALEN 间接影响基因组编辑,而不是在潜在靶位点引入基因组变异。我们的研究结果不仅证实了 TAME 可以成为一种有用的工具,用于加速具有多种胁迫耐受性的工业菌株的选育,还支持了之前对酵母中多种胁迫耐受性复杂机制的理解。