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PMID: 2557210 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

The sodium cycle in methanogenesis. CO2 reduction to the formaldehyde level in methanogenic bacteria is driven by a primary electrochemical potential of Na+ generated by formaldehyde reduction to CH4.

European journal of biochemistry ·Vol. 186 ·No. 1-2 ·1989-12-08 ·Pages 309-16

Kaesler B, Schönheit P

Abstract

CH4 formation from CO2 and H2 rather than from formaldehyde and H2 in methanogenic bacteria is inhibited by uncouplers, indicating that CO2 reduction to the formaldehyde level is energy-driven. We report here that in Methanosarcina barkeri the driving force is a primary electrochemical sodium potential (delta mu Na+) generated by formaldehyde reduction to CH4. This is concluded from the following findings. 1. CO2 reduction to CH4 was insensitive towards protonophores, when the Na+/H+ antiporter was inhibited; under these conditions delta mu Na+ was 120 mV (inside negative), whereas both delta mu H+ and the cellular ATP content were low. 2. CO2 reduction to CH4, rather than formaldehyde reduction, was sensitive towards Na+ ionophores, which dissipated delta mu Na+. 3. CO2 reduction to CH4, in the presence of protonophores and Na+/H+ antiport inhibitors, was coupled with the extrusion of 1-2 mol Na+/mol CH4, and formaldehyde reduction to CH4 was coupled with the extrusion of 3-4 mol Na+/mol CH4. Thus during CO2 reduction to the formaldehyde level 2-3 mol Na+ were consumed.

MeSH Terms
Amiloride/analogs & derivatives,pharmacology Carbon Dioxide/metabolism Carrier Proteins/antagonists & inhibitors Euryarchaeota/metabolism Formaldehyde/metabolism Hydrogen/metabolism Methane/metabolism Oxidation-Reduction Salicylanilides/pharmacology Sodium/metabolism,pharmacology Sodium Channels/metabolism Sodium-Hydrogen Exchangers
Chemicals
Carrier Proteins Salicylanilides Sodium Channels Sodium-Hydrogen Exchangers Carbon Dioxide Formaldehyde Amiloride Hydrogen Sodium 3,3',4',5-tetrachlorosalicylanilide Methane ethylisopropylamiloride
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Kaesler B
Fachbereich Biologie-Mikrobiologie, Philipps-Universität Marburg, FRG.
Schönheit P
Article Info
Journal
European journal of biochemistry
Abbr.
Eur J Biochem
ISSN
0014-2956
Published
1989-12-08
Pages
309-16
Language
English
Region
England
NLM ID
0107600
Subset
IM
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