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PMID: 10390814 Published · ppublish English Comparative Study Journal Article

Glucose overflow metabolism and mixed-acid fermentation in aerobic large-scale fed-batch processes with Escherichia coli.

Applied microbiology and biotechnology ·Vol. 51 ·No. 5 ·1999-05-00 ·Pages 564-71

Xu B, Jahic M, Blomsten G, Enfors SO

Abstract

Industrial 20-m3-scale and laboratory-scale aerobic fed-batch processes with Escherichia coli were compared. In the large-scale process the observed overall biomass yield was reduced by 12% at a cell density of 33 g/l and formate accumulated to 50 mg/l during the later constant-feeding stage of the process. Though the dissolved oxygen signal did not show any oxygen limitation, it is proposed that the lowered yield and the formate accumulation are caused by mixed-acid fermentation in local zones where a high glucose concentration induced oxygen limitation. The hypothesis was further investigated in a scale-down reactor with a controlled oxygen-limitation compartment. In this scaledown reactor similar results were obtained: i.e. an observed yield lowered by 12% and formate accumulation to 238 mg/l. The dynamics of glucose uptake and mixed-acid product formation (acetate, formate, D-lactate, succinate and ethanol) were investigated within the 54 s of passage time through the oxygen-limited compartment. Of these, all except succinate and ethanol were formed; however, the products were re-assimilated in the oxygen-sufficient reactor compartment. Formate was less readily assimilated, which accounts for its accumulation. The total volume of the induced-oxygen-limited zones was estimated to be 10% of the whole liquid volume in the large bioreactor. It is also suggested that repeated excretion and re-assimilation of mixed-acid products contribute to the reduced yield during scale-up and that formate analysis is useful for detecting local oxygen deficiency in large-scale E. coli processes.

MeSH Terms
Acetates/metabolism Aerobiosis Anaerobiosis Biomass Bioreactors Escherichia coli/growth & development,metabolism Fermentation Formates/metabolism Glucose/metabolism Lactic Acid/metabolism Oxygen/metabolism Time Factors
Chemicals
Acetates Formates formic acid Lactic Acid Glucose Oxygen
Authors & Affiliations
4 authors, click to expand affiliations / ORCID
Xu B
Department of Biotechnology, Royal Institute of Technology, Stockholm, Sweden.
Jahic M
Blomsten G
Enfors S O
Article Info
Journal
Applied microbiology and biotechnology
Abbr.
Appl Microbiol Biotechnol
ISSN
0175-7598
Published
1999-05-00
Pages
564-71
Language
English
Region
Germany
NLM ID
8406612
Subset
IM
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