Abstract
Cell suspensions of Methanosarcina barkeri were found to oxidize formaldehyde to CO 2 and 2H 2 (Δ G 0 ′= ‐ 27 kJ/mol CO 2 ), when methanogenesis was inhibited by 2‐bromoethanesulfonate. We report here that this reaction is coupled with (a) primary electrogenic Na + translocation at a stoichiometry of 2–3 Na + /CO 2 , (b) with secondary H + translocation via a Na + /H + antiporter and (c) with ATP synthesis driven by an electrochemical proton potential. This is concluded from the following findings. Formaldehyde oxidation to CO 2 and 2H 2 was dependent on Na + ions, 2–3 mol Na + /mol formaldehyde oxidized were extruded. Na + translocation was inhibited by Na + ionophores, but not affected by protonophores or Na + /H + antiport inhibitors. Formaldehyde oxidation was associated with the build up of a membrane potential in the order of 100 mV (inside negative), which could be dissipated by sodium ionophores rather than by protonophores. Formaldehyde oxidation was coupled with ATP synthesis, which could be inhibited by Na + ionophores, Na + /H + antiport inhibitors, by protonophores and by the H + ‐translocating‐ATP‐synthase inhibitor, dicyclohexyl‐carbodiimide. With cell suspensions of Methanobacterium thermoautotrophicum similar results were obtained.
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CITATION STYLE
KAESLER, B., & SCHÖNHEIT, P. (1989). The role of sodium ions in methanogenesis. European Journal of Biochemistry, 184(1), 223–232. https://doi.org/10.1111/j.1432-1033.1989.tb15010.x
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