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PMID: 1917837 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Malolactic fermentation: electrogenic malate uptake and malate/lactate antiport generate metabolic energy.

Journal of bacteriology ·Vol. 173 ·No. 19 ·1991-10-00 ·Pages 6030-7

Poolman B, Molenaar D, Smid EJ, Ubbink T, Abee T, Renault PP, Konings WN

Abstract

The mechanism of metabolic energy production by malolactic fermentation in Lactococcus lactis has been investigated. In the presence of L-malate, a proton motive force composed of a membrane potential and pH gradient is generated which has about the same magnitude as the proton motive force generated by the metabolism of a glycolytic substrate. Malolactic fermentation results in the synthesis of ATP which is inhibited by the ionophore nigericin and the F0F1-ATPase inhibitor N,N-dicyclohexylcarbodiimide. Since substrate-level phosphorylation does not occur during malolactic fermentation, the generation of metabolic energy must originate from the uptake of L-malate and/or excretion of L-lactate. The initiation of malolactic fermentation is stimulated by the presence of L-lactate intracellularly, suggesting that L-malate is exchanged for L-lactate. Direct evidence for heterologous L-malate/L-lactate (and homologous L-malate/L-malate) antiport has been obtained with membrane vesicles of an L. lactis mutant deficient in malolactic enzyme. In membrane vesicles fused with liposomes, L-malate efflux and L-malate/L-lactate antiport are stimulated by a membrane potential (inside negative), indicating that net negative charge is moved to the outside in the efflux and antiport reaction. In membrane vesicles fused with liposomes in which cytochrome c oxidase was incorporated as a proton motive force-generating mechanism, transport of L-malate can be driven by a pH gradient alone, i.e., in the absence of L-lactate as countersubstrate. A membrane potential (inside negative) inhibits uptake of L-malate, indicating that L-malate is transported an an electronegative monoanionic species (or dianionic species together with a proton). The experiments described suggest that the generation of metabolic energy during malolactic fermentation arises from electrogenic malate/lactate antiport and electrogenic malate uptake (in combination with outward diffusion of lactic acid), together with proton consumption as result of decarboxylation of L-malate. The net energy gain would be equivalent to one proton translocated form the inside to the outside per L-malate metabolized.

MeSH Terms
Biological Transport Carbon Dioxide/metabolism Energy Metabolism Fermentation Hydrogen-Ion Concentration Lactates/metabolism Lactic Acid Lactococcus lactis/metabolism Malate Dehydrogenase/metabolism Malates/metabolism
Chemicals
Lactates Malates Carbon Dioxide Lactic Acid malic acid malolactic enzyme Malate Dehydrogenase
Authors & Affiliations
7 authors, click to expand affiliations / ORCID
Poolman B
Department of Microbiology, University of Groningen, Haren, The Netherlands.
Molenaar D
Smid E J
Ubbink T
Abee T
Renault P P
Konings W N
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Article Info
Journal
Journal of bacteriology
Abbr.
J Bacteriol
ISSN
0021-9193
Published
1991-10-00
Pages
6030-7
Language
English
Region
United States
NLM ID
2985120R
PMCID
PMC208348
Subset
IM
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