格式化
生物燃料
酿酒酵母
甲酸脱氢酶
甲醇
微生物
食品科学
拉伤
生物柴油
代谢工程
制浆造纸工业
糠醛
生物技术
碳纤维
化学
有机化学
酵母
工程类
生物化学
生物
催化作用
材料科学
细菌
复合数
遗传学
酶
解剖
复合材料
作者
Kai Wang,Yangyang Da,Haoran Bi,Yanhui Liu,Biqiang Chen,Meng Wang,Zihe Liu,Jens Nielsen,Tianwei Tan
标识
DOI:10.1016/j.renene.2023.03.058
摘要
Utilization of one-carbon chemicals such as CO2, formate, and methanol by microorganisms can enable the sustainable production of fuels and chemicals. However, the low conversion efficiency of these chemicals by microorganisms is a major challenge. To address this, we designed a one-carbon strategy that can utilize CO2 and its derivative formate. Here, a platform yeast strain with improved formate utilization and NAD(P)H production was constructed and evaluated for its ability to produce free fatty acids (FFAs). Based on 13C-marked analysis, the one-carbon assimilation efficiency of the platform strain reached 11.24%. Through continuous optimization, under conditions of glucose feeding the formate utilization rate of the final strain reached 0.48 g/L/h, with the final titer of FFAs reached 10.1 g/L, which represented improvements of 21.8 times and 33.7 times, respectively. As such, the produced FFAs can be easily transformed into biodiesel by combining them with downstream technologies in future research.
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