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PMID: 25894463 已发表 · ppublish 英语

Metabolic engineering of Clostridium tyrobutyricum for n-butanol production through co-utilization of glucose and xylose.

Biotechnology and bioengineering ·第 112 卷 ·第 10 期 ·2016-05-16

Yu Le, Xu Mengmeng, Tang I-Ching, Yang Shang-Tian

摘要

The glucose-mediated carbon catabolite repression (CCR) in Clostridium tyrobutyricum impedes efficient utilization of xylose present in lignocellulosic biomass hydrolysates. In order to relieve the CCR and enhance xylose utilization, three genes (xylT, xylA, and xylB) encoding a xylose proton-symporter, a xylose isomerase and a xylulokinase, respectively, from Clostridium acetobutylicum ATCC 824 were co-overexpressed with aldehyde/alcohol dehydrogenase (adhE2) in C. tyrobutyricum (Δack). Compared to the strain Ct(Δack)-pM2 expressing only adhE2, the mutant Ct(Δack)-pTBA had a higher xylose uptake rate and was able to simultaneously consume glucose and xylose at comparable rates for butanol production. Ct(Δack)-pTBA produced more butanol (12.0 vs. 3.2 g/L) with a higher butanol yield (0.12 vs. 0.07 g/g) and productivity (0.17 vs. 0.07 g/L · h) from both glucose and xylose, while Ct(Δack)-pM2 consumed little xylose in the fermentation. The results confirmed that the CCR in C. tyrobutyricum could be overcome through overexpressing xylT, xylA, and xylB. The mutant was also able to co-utilize glucose and xylose present in soybean hull hydrolysate (SHH) for butanol production, achieving a high butanol titer of 15.7 g/L, butanol yield of 0.24 g/g, and productivity of 0.29 g/L · h. This study demonstrated the potential application of Ct(Δack)-pTBA for industrial biobutanol production from lignocellulosic biomass.

关键词
Clostridium tyrobutyricum butanol carbon catabolite repression metabolic engineering soybean hull hydrolysate xylose
文献信息
期刊
Biotechnology and bioengineering
期刊简称
Biotechnol Bioeng
发表日期
2016-05-16
收录日期
2015-08-26
更新日期
2015-08-26
语言
英语
国家/地区
United States
NLM ID
7502021
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