Improvement of Solvent Production from Xylose Mother Liquor by Engineering the Xylose Metabolic Pathway in Clostridium acetobutylicum EA 2018

被引:0
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作者
Zhilin Li
Han Xiao
Weihong Jiang
Yu Jiang
Sheng Yang
机构
[1] Shanghai Institutes for Biological Sciences,Key Laboratory of Synthetic Biology, Institute of Plant Physiology and Ecology
[2] Chinese Academy of Sciences,Department of Chemical and Biomolecular Engineering
[3] Shanghai Research and Development Center of Industrial Biotechnology,undefined
[4] University of Illinois at Urbana-Champaign,undefined
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关键词
Butanol; Xylose pathway engineering; Xylose mother liquor;
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学科分类号
摘要
Xylose mother liquor (XML) is a by-product of xylose production through acid hydrolysis from corncobs, which can be used potentially for alternative fermentation feedstock. Sixteen Clostridia including 13 wild-type, 1 industrial strain, and 2 genetically engineered strains were screened in XML, among which the industrial strain Clostridium acetobutylicum EA 2018 showed the highest titer of solvents (12.7 g/L) among non-genetic populations, whereas only 40 % of the xylose was consumed. An engineered strain (2018glcG-TBA) obtained by combination of glcG disruption and expression of the d-xylose proton-symporter, d-xylose isomerase, and xylulokinase was able to completely utilize glucose and l-arabinose, and 88 % xylose in XML. The 2018glcG-TBA produced total solvents up to 21 g/L with a 50 % enhancement of total solvent yield (0.33 g/g sugar) compared to that of EA 2018 (0.21 g/g sugar) in XML. This XML-based acetone–butanol–ethanol fermentation using recombinant 2018glcG-TBA was estimated to be economically promising for future production of solvents.
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页码:555 / 568
页数:13
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