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Improved succinic acid production in the anaerobic culture of an Escherichia coli PflB ldhA double mutant as a result of enhanced anaplerotic activities in the preceding aerobic culture  ( SCI-EXPANDED收录)  

文献类型:期刊文献

英文题名:Improved succinic acid production in the anaerobic culture of an Escherichia coli PflB ldhA double mutant as a result of enhanced anaplerotic activities in the preceding aerobic culture

作者:Wu, Hui[1];Li, Zhi-Min[1];Zhou, Li[1];Ye, Qin[1]

机构:[1]E China Univ Chem Technol, State Key Lab Bioreactor Engn, Shanghai 200237, Peoples R China

年份:2007

卷号:73

期号:24

起止页码:7837

外文期刊名:APPLIED AND ENVIRONMENTAL MICROBIOLOGY

收录:;WOS:【SCI-EXPANDED(收录号:WOS:000251902300005)】;

语种:英文

摘要:Escherichia coli NZN111 is a pflB ldhA double mutant which loses its ability to ferment glucose anaerobically due to redox imbalance. In this study, two-stage culture of NZN111 was carried out for succinic acid production. It was found that when NZN111 was aerobically cultured on acetate, it regained the ability to ferment glucose with succinic acid as the major product in subsequent anaerobic culture. In two-stage culture carried out in flasks, succinic acid was produced at a level of 11.26 g/liter from 13.4 g/liter of glucose with a succinic acid yield of 1.28 mol/mol glucose and a productivity of 1.13 g/liter . h in the anaerobic stage. Analyses of key enzyme activities revealed that the activities of isocitrate lyase, malate dehydrogenase, malic enzyme, and phosphoenolpyruvate (PEP) carboxykinase were greatly enhanced while those of pyruvate kinase and PEP carboxylase were reduced in the acetate-grown cells. The two-stage culture was also performed in a 5-liter fermentor without separating the acetate-grown NZN111 cells from spent medium. The overall yield and concentration of succinic acid reached 1.13 mol/mol glucose and 28.2 g/liter, respectively, but the productivity of succinic acid in the anaerobic stage dropped to 0.7 g/liter . h due to cell autolysis and reduced anaplerotic activities. The results indicate the great potential to take advantage of cellular regulation mechanisms for improvement of succinic acid production by a metabolically engineered E. coli strain.

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