生物过程
发酵
生化工程
酵母
木糖
酿酒酵母
合成生物学
糖
产量(工程)
生物技术
代谢工程
化学
计算机科学
计算生物学
生物
生物化学
材料科学
工程类
古生物学
酶
冶金
作者
Jonghyeok Shin,Siqi Liao,Nurzhan Kuanyshev,Yongping Xin,Chan-Woo Kim,Ting Lu,Yong‐Su Jin
标识
DOI:10.1038/s41467-024-45011-w
摘要
Abstract Synthetic microbial communities have emerged as an attractive route for chemical bioprocessing. They are argued to be superior to single strains through microbial division of labor (DOL), but the exact mechanism by which DOL confers advantages remains unclear. Here, we utilize a synthetic Saccharomyces cerevisiae consortium along with mathematical modeling to achieve tunable mixed sugar fermentation to overcome the limitations of single-strain fermentation. The consortium involves two strains with each specializing in glucose or xylose utilization for ethanol production. By controlling initial community composition, DOL allows fine tuning of fermentation dynamics and product generation. By altering inoculation delay, DOL provides additional programmability to parallelly regulate fermentation characteristics and product yield. Mathematical models capture observed experimental findings and further offer guidance for subsequent fermentation optimization. This study demonstrates the functional potential of DOL in bioprocessing and provides insight into the rational design of engineered ecosystems for various applications.
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