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首页> 外文期刊>Bioresource Technology: Biomass, Bioenergy, Biowastes, Conversion Technologies, Biotransformations, Production Technologies >Enhancement of sucrose metabolism in Clostridium saccharoperbutylacetonicum N1-4 through metabolic engineering for improved acetone-butanol-ethanol (ABE) fermentation
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Enhancement of sucrose metabolism in Clostridium saccharoperbutylacetonicum N1-4 through metabolic engineering for improved acetone-butanol-ethanol (ABE) fermentation

机译:通过代谢工程改善丙酮 - 丁醇 - 乙醇(ABE)发酵的代谢工程,增强梭菌糖酵母Butylcetonicum N1-4中的蔗糖新陈代谢

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摘要

This work investigated sucrose metabolism in C. saccharoperbutylacetonicum. Inactivation of sucrose catabolism operon resulted in 28.9% decrease in sucrose consumption and 44.1% decrease in ABE production with sucrose as sole carbon source. Interestingly, a large amount of colloid-like polysaccharides were generated in the mutant, which might be due to inefficient intracellular sucrose metabolism. Deletion of transcriptional repressor gene successfully alleviated CCR and enhanced ABE production by 24.7%. Additional overexpression of endogenous sucrose pathway further elevated sucrose consumption and enhanced ABE production by 17.2%, 45.7%, or 22.5% compared to wild type with sucrose, mixed sugars or sugarcane juice as substrate, respectively. The engineered strain could be a robust platform for efficient biofuel production from inexpensive sucrose-based carbon sources.
机译:这项工作研究了C.Saccharoperbutylcetonicum中的蔗糖代谢。 蔗糖分解代谢操纵子的灭活导致蔗糖消耗减少28.9%,蔗糖作为唯一碳源减少了44.1%。 有趣的是,在突变体中产生大量的胶体样多糖,这可能是由于细胞内蔗糖代谢的效率低。 转录抑制基因的缺失成功缓解了CCR,增强了ABE产量24.7%。 与野生型具有蔗糖,混合糖或甘蔗汁作为底物的野生型相比,内源性蔗糖途径的额外过表达进一步升高了蔗糖消耗,增强了ABE产量17.2%,45.7%或22.5%。 工程化应变可以是高效的基于蔗糖基碳源生产的生物燃料生产的鲁棒平台。

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