Inoue Yoshifumi, Nakamura Kaito, Yamada Ryosuke, Matsumoto Takuya, Ogino Hiroyasu
Osaka Metropolitan University, Department of Chemical Engineering, 1-1 Gakuen-cho, Naka-ku, Sakai, Osaka, 599-8531, Japan.
Metab Eng Commun. 2025 May 17;20:e00262. doi: 10.1016/j.mec.2025.e00262. eCollection 2025 Jun.
Methanol has attracted attention as an alternative carbon source to petroleum. , a methanol-assimilating yeast, is a useful host for the chemical production from methanol. A previous study successfully constructed a metabolically engineered GS115/S8/Z3 strain capable of producing D-lactic acid from methanol. In this study, we aimed to develop a strain with improved D-lactic acid production by applying ultra-violet mutagenesis to the D-lactic acid-producing strain, GS115/S8/Z3. The resulting mutant strain DLac_Mut2_221 produced 5.38 g/L of D-lactic acid from methanol, a 1.52-fold increase compared to the parent strain GS115/S8/Z3. The transcriptome analysis of the mutant DLac_Mut2_221 identified 158 differentially expressed genes, providing insights into key mechanisms contributing to enhanced D-lactic acid production. Metabolic engineering strategies for based on the knowledge gained from this study will contribute to improving the productivity of various useful chemicals from methanol.
甲醇作为石油的替代碳源已引起关注。甲醇同化酵母是利用甲醇进行化学品生产的有用宿主。先前的一项研究成功构建了一种能够从甲醇生产D-乳酸的代谢工程菌株GS115/S8/Z3。在本研究中,我们旨在通过对产D-乳酸菌株GS115/S8/Z3进行紫外线诱变,开发一种提高D-乳酸产量的菌株。所得突变菌株DLac_Mut2_221从甲醇中产生了5.38 g/L的D-乳酸,与亲本菌株GS115/S8/Z3相比增加了1.52倍。对突变体DLac_Mut2_221的转录组分析鉴定出158个差异表达基因,为提高D-乳酸产量的关键机制提供了见解。基于本研究获得的知识,针对[具体酵母名称未给出]的代谢工程策略将有助于提高从甲醇生产各种有用化学品的生产率。