Kamba Sota, Yamada Ryosuke, Matsumoto Takuya, Ogino Hiroyasu
Osaka Metropolitan University, Department of Chemical Engineering, 1-1 Gakuen-cho, Naka-ku, Sakai, Osaka 599-8531, Japan.
Osaka Metropolitan University, Department of Chemical Engineering, 1-1 Gakuen-cho, Naka-ku, Sakai, Osaka 599-8531, Japan.
Enzyme Microb Technol. 2025 Feb;183:110551. doi: 10.1016/j.enzmictec.2024.110551. Epub 2024 Nov 22.
The oleaginous yeast Lipomyces starkeyi is a promising triacylglycerol (TAG) producer for biodiesel fuel. However, it is necessary to further improve TAG productivity in L. starkeyi from a mixed sugar of glucose and xylose. This study aimed to construct an L. starkeyi mutant with increased TAG productivity from glucose/xylose mixed-sugar and to elucidate the causes underlying increased lipid productivity. Ultra-violet (UV) mutagenesis combined with enrichment culture with ethanol and HO and selection of low-density cells was applied to L. starkeyi to obtain the L. starkeyi mutant strain UMP47, which exhibited higher TAG production from glucose/xylose. Transcriptome analysis revealed high expression of genes involved in transporter activity and carbohydrate metabolism, whereas genes involved in DNA replication exhibited lower expression in the mutant strain UMP47 than in the wild-type strain. Altogether, the lipid productivity of L. starkeyi was successfully improved by UV mutagenesis. Transcriptome analysis suggested the importance of previously unidentified genes in TAG production. This study provides information on potential target genes for improving TAG production through the genetic modification of oleaginous yeast.
产油酵母斯达氏油脂酵母是一种很有前景的用于生产生物柴油燃料的三酰甘油(TAG)的微生物。然而,有必要进一步提高斯达氏油脂酵母利用葡萄糖和木糖的混合糖生产TAG的能力。本研究旨在构建一种利用葡萄糖/木糖混合糖时TAG产量增加的斯达氏油脂酵母突变体,并阐明脂质产量增加的潜在原因。采用紫外线(UV)诱变结合乙醇和HO富集培养以及低密度细胞筛选的方法处理斯达氏油脂酵母,获得了利用葡萄糖/木糖时TAG产量更高的斯达氏油脂酵母突变株UMP47。转录组分析表明,参与转运活性和碳水化合物代谢的基因高表达,而参与DNA复制的基因在突变株UMP47中的表达低于野生型菌株。总之,通过UV诱变成功提高了斯达氏油脂酵母的脂质产量。转录组分析表明,以前未鉴定的基因在TAG生产中具有重要作用。本研究为通过产油酵母的基因改造提高TAG产量提供了潜在靶基因的相关信息。