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A modified metabolic model for mixed culture fermentation with energy conserving electron bifurcation reaction and metabolite transport energy
Authors:Fang Zhang  Yan Zhang  Man Chen  Mark CM van Loosdrecht  Raymond J Zeng
Institution:1. School of Earth and Space Sciences, University of Science and Technology of China, Hefei, Anhui 230026, People's Republic of China;2. telephone: +86‐551‐63600203;3. fax: +86‐551‐63601592;4. Department of Chemistry, University of Science and Technology of China, Hefei, Anhui 230026, People's Republic of China;5. Department of Biotechnology, Delft University of Technology, Delft, The Netherlands
Abstract:A modified metabolic model for mixed culture fermentation (MCF) is proposed with the consideration of an energy conserving electron bifurcation reaction and the transport energy of metabolites. The production of H2 related to NADH/NAD+ and Fdred/Fdox is proposed to be divided in three processes in view of energy conserving electron bifurcation reaction. This assumption could fine‐tune the intracellular redox balance and regulate the distribution of metabolites. With respect to metabolite transport energy, the proton motive force is considered to be constant, while the transport rate coefficient is proposed to be proportional to the octanol–water partition coefficient. The modeling results for a glucose fermentation in a continuous stirred tank reactor show that the metabolite distribution is consistent with the literature: (1) acetate, butyrate, and ethanol are main products at acidic pH, while the production shifts to acetate and propionate at neutral and alkali pH; (2) the main products acetate, ethanol, and butyrate shift to ethanol at higher glucose concentration; (3) the changes for acetate and butyrate are following an increasing hydrogen partial pressure. The findings demonstrate that our modified model is more realistic than previous proposed model concepts. It also indicates that inclusion of an energy conserving electron bifurcation reaction and metabolite transport energy for MCF is sound in the viewpoint of biochemistry and physiology. Biotechnol. Bioeng. 2013; 110: 1884–1894. © 2013 Wiley Periodicals, Inc.
Keywords:metabolic modeling  variable stoichiometry  mixed culture fermentation  energy conserving electron bifurcation reaction  metabolite transport energy  transport rate coefficient
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