生物化学
酵母
葡萄糖-6-磷酸异构酶
酿酒酵母
糖酵解
化学
蔗糖
代谢工程
新陈代谢
呼吸
氧化还原
生物
酶
有机化学
植物
作者
Zhiqiang Xiao,Yifei Zhao,Yongtong Wang,Xinjia Tan,Lian Wang,Jiwei Mao,Siqi Zhang,Qiyuan Lu,Fanglin Hu,Shasha Zuo,Juan Liu,Yang Shan
标识
DOI:10.1038/s41467-025-60578-8
摘要
Abstract Saccharomyces cerevisiae primarily generates energy through glycolysis and respiration. However, the manifestation of the Crabtree effect results in substantial carbon loss and energy inefficiency, which significantly diminishes product yield and escalates substrate costs in microbial cell factories. To address this challenge, we introduce the sucrose phosphorolysis pathway and delete the phosphoglucose isomerase gene PGI1 , effectively decoupling glycolysis from respiration and facilitating the metabolic transition of yeast to a Crabtree-negative state. Additionally, a synthetic energy system is engineered to regulate the NADH/NAD + ratio, ensuring sufficient ATP supply and maintaining redox balance for optimal growth. The reprogrammed yeast strain exhibits significantly higher yields of various non-ethanol compounds, with lactic acid and 3-hydroxypropionic acid production increasing by 8- to 11-fold comparing to the conventional Crabtree-positive strain. This study describes an approach for overcoming the Crabtree effect in yeast, substantially improving energy metabolism, carbon recovery, and product yields.
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