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Part of the book series: Federation of European Microbiological Societies Symposium Series ((FEMS,volume 54))

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Abstract

In anaerobic environments carbon and energy flow is even more closely, interrelated than in aerobic habitats. This is due to the high proportion of carbon substrate transformed to fermentation end-products in order to create the necessary energetic balance for efficient cell growth. Some of these fermentation metabolites play an essential role in energy (ATP) production via substrate level phosphorylation reactions, while others can be viewed as electron sinks to avoid accumulation of excess reducing equivalents (as reduced co-enzymes). In an established multi-species population the product of one species fermentative metabolism will contribute to the substrate requirements of co-existing species. Thus, an essential interspecies carbon flow will occur involving various different metabolic types. In addition, some species that overcome their excess reducing equivalent yield via hydrogen gas production will almost certainly be present. This source of reducing power is essential for homoacetogenic and methanogenic autotrophs that fix carbon dioxide as principle substrate.

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REFERENCES

  1. J.G. Zeikus. Metabolic communication between biodegradative populations in nature. In: ā€œMicrobes in their Natural Environmentsā€ J.H. Slater, R. Whittenbury & J.W.T. Wimpenny (eds.), p. p. 423 ā€“ 462. Cambridge University Press, Cambridge, U.K. (1983).

    Google ScholarĀ 

  2. N.D. Lindley, P. LoubiĆØre and G. Goma. Chemostat growth of Eubacterium limosumon unicarbon substrate mixtures.In:ā€ Mixed and Multiple Substrates and Feedstocks ā€œ. G. Hamer & T. Egli (eds.). In press. (1989).

    Google ScholarĀ 

  3. S. Pacaud, P. LoubiĆØre, G. Goma and N. d. Lindley. Organic acid production during methylotrophic growth of Eubacterium limosum: displacement towards increased butyric acid yields by supplementing with acetate. Appl. Microbiology. Biotechn. 23: 330 ā€“ 335. (1986).

    CASĀ  Google ScholarĀ 

  4. P. LoubiĆØre, G. Goma and N.D. Lindley. A non-passive mechanism of butyrate excretion operates during acidogenic fermentation of methanol by Eubacterium limosum. Antonie van Leeuwenhoek. In press. (1989).

    Google ScholarĀ 

  5. G. Hamer and T. Egli. Concluding remarks.In: ā€œMixed and Multiple Substrates and Feedstocksā€. G. Hamer & T. Egli. (eds.). In press. (1989).

    Google ScholarĀ 

  6. B.R. Sharak - Genther and M.P. Bryant. Additional characteristics of one ā€“ carbon ā€“ compound utilization by Eubacterium limosum Acebacterium wodii. Appl. Environ. Microbiol. 53 : 471 ā€“ 476 (1987)

    Google ScholarĀ 

  7. B. Schink. Ecology of Cl-utilizing anaerobes. In:ā€œMicrobial Growth on CI-Compounds; 5th International Symposiumā€. H.W. van Verseveld & J.A. Duine (eds.), p. p. 81ā€“88, Martinus Nijhoff (Pub.), Dordrecht, The Netherlands. (1987).

    Google ScholarĀ 

  8. P. LoubiĆØre, S. Pacaud, G. Goma and N.D. Lindley. The effect of formate on the acidogenic fermentation of methanol by Eubacterium limosum. J. Gen. Appl. Microbiol., 33: 463 ā€“ 470. (1987).

    ArticleĀ  Google ScholarĀ 

  9. V. MĆ¼ller. Sodium bioenergetics in methanogens and acetogens. In: ā€œMicrobial Growth on CI - compounds: 6th International Symposiumā€ to be published (1989).

    Google ScholarĀ 

  10. N.D. Lindley and P. Soucaille. Control of carbon flow in anaerobes by mixed substrate feeding strategies.In: ā€œStratĆ©gie dā€™Utilisation des Substrats pour la production des MĆ©tabolites Microbiensā€. J.M. Le Beault & J.G. Pan. (eds.). SociĆ©tĆ© FranƧaise de Microbiologie, Paris. In press. (1989).

    Google ScholarĀ 

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Ā© 1990 Plenum Press

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Lindley, N.D., Gros, E., LeBloas, P., Cocaign, M., LoubiƩre, P. (1990). Carbon and Energy Flow during Acetogenic Metabolism of Unicarbon and Multicarbon Substrates. In: BƩlaich, JP., Bruschi, M., Garcia, JL. (eds) Microbiology and Biochemistry of Strict Anaerobes Involved in Interspecies Hydrogen Transfer. Federation of European Microbiological Societies Symposium Series, vol 54. Springer, Boston, MA. https://doi.org/10.1007/978-1-4613-0613-9_19

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  • DOI: https://doi.org/10.1007/978-1-4613-0613-9_19

  • Publisher Name: Springer, Boston, MA

  • Print ISBN: 978-1-4612-7892-4

  • Online ISBN: 978-1-4613-0613-9

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