Biochemical, genetic, and metabolic engineering strategies to enhance coproduction of 1-propanol and ethanol in engineered Escherichia coli
Autor: | Murray Moo-Young, C. Perry Chou, Xuejia Liu, Kajan Srirangan, Adam W. Westbrook, Lamees Akawi, Michael E. Pyne |
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Rok vydání: | 2014 |
Předmět: |
Glycerol
Acidogenesis Ethanol Operon 1-Propanol General Medicine Biology medicine.disease_cause Applied Microbiology and Biotechnology Metabolic engineering chemistry.chemical_compound Mutase Metabolic Engineering Biochemistry chemistry Escherichia coli medicine Fermentation Anaerobiosis Ethanol metabolism Metabolic Networks and Pathways Biotechnology |
Zdroj: | Applied Microbiology and Biotechnology. 98:9499-9515 |
ISSN: | 1432-0614 0175-7598 |
DOI: | 10.1007/s00253-014-6093-9 |
Popis: | We recently reported the heterologous production of 1-propanol in Escherichia coli via extended dissimilation of succinate under anaerobic conditions through expression of the endogenous sleeping beauty mutase (Sbm) operon. In the present work, we demonstrate high-level coproduction of 1-propanol and ethanol by developing novel engineered E. coli strains with effective cultivation strategies. Various biochemical, genetic, metabolic, and physiological factors affecting relative levels of acidogenesis and solventogenesis during anaerobic fermentation were investigated. In particular, CPC-PrOH3, a plasmid-free propanogenic E. coli strain derived by activating the Sbm operon on the genome, showed high levels of solventogenesis accounting for up to 85 % of dissimilated carbon. Anaerobic fed-batch cultivation of CPC-PrOH3 with glycerol as the major carbon source produced high titers of nearly 7 g/L 1-propanol and 31 g/L ethanol, implying its potential industrial applicability. The activated Sbm pathway served as an ancillary channel for consuming reducing equivalents upon anaerobic dissimilation of glycerol, resulting in an enhanced glycerol dissimilation and a major metabolic shift from acidogenesis to solventogenesis. |
Databáze: | OpenAIRE |
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