酿酒酵母
代谢工程
磷酸戊糖途径
甲醇
生物化学
化学
同化(音韵学)
烟酰胺腺嘌呤二核苷酸
合成生物学
异源的
三磷酸腺苷
代谢途径
生物生产
蛋白质工程
新陈代谢
辅因子
生物催化
戊糖
烟酰胺腺嘌呤二核苷酸磷酸
固碳
拉伤
微生物代谢
运动发酵单胞菌
DNA
柠檬酸循环
酵母
大肠杆菌
生物合成
互补
核苷酸
甘氨酸
组合化学
作者
Wei Zhong,Nana Liu,Binbin Chen,Huiqi Sun,Xiao Fei,Jiazhang Lian,Junling Guo,Bo Wang,Yajie Wang
标识
DOI:10.1038/s41467-026-68516-y
摘要
Methanol is a promising one-carbon (C1) feedstock for microbial bioconversion; however, engineered Saccharomyces cerevisiae often faces energetic constrains during its assimilation. Here, we develop SC-AOX25, an energy-efficient methylotrophic S. cerevisiae, through engineering of heterologous methanol-formaldehyde-formate (MFF) oxidation pathways coupled with adaptive laboratory evolution. SC-AOX25 efficiently generates adenosine triphosphate (ATP) and nicotinamide adenine dinucleotide (NADH) during methanol metabolism while co-assimilating methanol-derived intermediates (formaldehyde, formate, and CO₂) via native glyoxylate-serine cycle, pentose phosphate pathway, and reductive glycine pathway. Key energy modules - Fdh1sc, Adh2m, Aoxm, and Rgi2m - are characterized for their roles in ATP/NADH synthesis and methylotrophic growth. Formaldehyde-induced DNA-protein crosslinks (DPCs) and large repeated DNA fragments suggest strategies for methanol detoxification and phenotype enhancement. Utilizing SC-AOX25, we enable CO₂ assimilation through non-native Calvin cycle during methanol fermentation, establishing the engineered strain as a robust and energy-efficient methylotrophic platform for further C1 engineering. Synthetic methylotrophic S. cerevisiae often faces energetic constrains during one-carbon assimilation. Here, the authors address this issue by engineering of heterologous methanol-formate-formaldehyde oxidation pathways to enable CO2 assimilation via non-native Calvin cycle during methanol fermentation.
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