Pyruvate decarboxylase and alcohol dehydrogenase overexpression in Escherichia coli resulted in high ethanol production and rewired metabolic enzyme networks

被引:0
作者
Mingfeng Yang
Xuefeng Li
Chunya Bu
Hui Wang
Guanglu Shi
Xiushan Yang
Yong Hu
Xiaoqin Wang
机构
[1] Beijing University of Agriculture,Key Laboratory of Urban Agriculture (North) Ministry of Agriculture
[2] Capital Normal University,College of Life Sciences
来源
World Journal of Microbiology and Biotechnology | 2014年 / 30卷
关键词
Pyruvate decarboxylase; Alcohol dehydrogenase; Ethanol; Proteomics;
D O I
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中图分类号
学科分类号
摘要
Pyruvate decarboxylase and alcohol dehydrogenase are efficient enzymes for ethanol production in Zymomonas mobilis. These two enzymes were over-expressed in Escherichia coli, a promising candidate for industrial ethanol production, resulting in high ethanol production in the engineered E. coli. To investigate the intracellular changes to the enzyme overexpression for homoethanol production, 2-DE and LC–MS/MS were performed. More than 1,000 protein spots were reproducibly detected in the gel by image analysis. Compared to the wild-type, 99 protein spots showed significant changes in abundance in the recombinant E. coli, in which 46 were down-regulated and 53 were up-regulated. Most proteins related to tricarboxylic acid cycle, glycerol metabolism and other energy metabolism were up-regulated, whereas proteins involved in glycolysis and glyoxylate pathway were down-regulated, indicating the rewired metabolism in the engineered E. coli. As glycolysis is the main pathway for ethanol production, and it was inhibited significantly in engineered E. coli, further efforts should be directed at minimizing the repression of glycolysis to optimize metabolism network for higher yields of ethanol production.
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页码:2871 / 2883
页数:12
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[51]  
Reznikoff WS(undefined)A general definition of metabolic pathways useful for systematic organization and analysis of complex metabolic networks undefined undefined undefined-undefined
[52]  
Frey PA(undefined)Exploring the mechanism of undefined undefined undefined-undefined
[53]  
Gold RS(undefined) desiccation tolerance through a proteomic strategy undefined undefined undefined-undefined
[54]  
Meagher MM(undefined)Re-engineering undefined undefined undefined-undefined
[55]  
Tong S(undefined) for ethanol production undefined undefined undefined-undefined
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