过氧化物酶体
酵母
酿酒酵母
代谢工程
生物化学
胞浆
细胞器
化学
功能(生物学)
计算生物学
生化工程
细胞生物学
瓶颈
生物
合成生物学
生物技术
能源
线粒体
作者
Yongxing Li,BingJie Du,Chun Li,Xudong Feng,Yongxing Li,BingJie Du,Chun Li,Xudong Feng
标识
DOI:10.1038/s41467-025-65444-1
摘要
Acetyl-CoA serves as a foundational precursor and energy source for various biosynthesis pathways. The insufficient supply of acetyl-CoA in cytosol is usually a bottleneck for exogenous chemical synthesis in engineered microbes such as yeast. Exportation of acetyl-CoA from peroxisome, an exclusive organelle for fatty acids β-oxidation, may be an effective way to solve this problem. In this study, we develop a peroxin (PEX) engineering strategy to modulate peroxisome assembly in S. cerevisiae. Then, robust peroxisomes are constructed with improved acetyl-CoA supply by up to 98%, which further leads to the increased liquiritigenin titer (1102.4 mg/L). We also demonstrate that the PEX-mediated peroxisome engineering strategy can be extended across yeast species. Hybrid peroxisomes with tailored function are constructed in S. cerevisiae by transplanting selected PEXs from Y. lipolytica. Our study provides mechanistic insights into the "PEXs-peroxisome assembly-acetyl-CoA synthesis" relationship.
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