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Increased incorporation of gaseous CO2 into succinate by Escherichia coil overexpressing carbonic anhydrase and phosphoenolpyruvate carboxylase genes

Authors
Park, SoohyunLee, Jae-ungCho, SukhyeongKim, HyeonsooOh, Han BinPack, Seung PilLee, Jinwon
Issue Date
10-1월-2017
Publisher
ELSEVIER
Keywords
Carbon dioxide; Carbonic anhydrase; Phosphoenolpyruvate carboxylase; Escherichia coil; Succinate
Citation
JOURNAL OF BIOTECHNOLOGY, v.241, pp.101 - 107
Indexed
SCIE
SCOPUS
Journal Title
JOURNAL OF BIOTECHNOLOGY
Volume
241
Start Page
101
End Page
107
URI
https://scholar.korea.ac.kr/handle/2021.sw.korea/84933
DOI
10.1016/j.jbiotec.2016.11.027
ISSN
0168-1656
Abstract
Carbon dioxide (CO2) is an abundant and cheap carbon source that is partly responsible for global warming in the atmosphere. The objective of this study was to construct a recombinant E. coli strain that can show enhanced production of succinate derived from CO2. In this study, we confirmed the enhancement of utilization by analyzing succinate containing one carbon-13 (C-13) derived from (CO2)-C-13. Firstly, the carbonic anhydrase gene (SP(-)HCCA) derived from Hahella chejuensis KCTC 2396 was over-expressed to enhance carbon flux toward bicarbonate ion (HCO3-) synthesis in E. coli. The phosphoenolpyruvate carboxylase gene (ppc) was over-expressed to enhance the production of oxaloacetate by enhancing the carbon flux. Compared with the control strain, the percentage of the succinate containing one C-13 (succinate(119)) to total succinate was enhanced by approximately 2.80-fold and the amount of succinate(119) also increased by approximately 4.09-fold in SGJS120. Secondly, the lactate dehydrogenase gene (IdhA) was deleted to re-direct the utilization of the carbon source from glucose to enhance succinate production in SGJS120. However, IdhA deletion did not increase CO2 utilization in SJGS120. Finally, the phosphotransferase system gene (ptsG) and pyruvate kinase F gene (pykF) were deleted to increase the amount of phosphoenolpyruvate (PEP). SGJS126 (pykF deletion strain) showed the highest increase, which was 6.05-fold higher than the control strain. From the results, SP(-)HCCA overexpression and pykF deletion may be useful for enhancing CO2 utilization in E. coli. Additionally, engineered strains showed the potential to reduce the cost of succinate production by using an industrially cheaper carbon source such as CO2 and converting CO2 to a valuable chemical. (C) 2016 Published by Elsevier B.V.
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