Abstract
The transport of the tricarboxylic acid cycle C(4)-dicarboxylic acids was studied in both the wild-type strain and tricarboxylic acid cycle mutants of Bacillus subtilis. Active transport of malate, fumarate, and succinate was found to be inducible by these dicarboxylic acids or by precursors to them, whereas glucose or closely related metabolites catabolite-repressed their uptake. l-Malate was found to be the best dicarboxylic acid transport inducer in succinic dehydrogenase, fumarase, and malic dehydrogenase mutants. Succinate and fumarate are accumulated over 100-fold in succinic dehydrogenase and fumarase mutants, respectively, whereas mutants lacking malate dehydrogenase were unable to accumulate significant quantities of the C(4)-dicarboxylic acids. The stereospecificity of this transport system was studied from a comparison of the rates of competitive inhibition of both succinate uptake and efflux in a succinate dehydrogenase mutant by utilizing thirty dicarboxylic acid analogues. The system was specific for the C(4)-dicarboxylic acids of the tricarboxylic acid cycle, neither citrate nor alpha-ketoglutarate were effective competitive inhibitors. Of a wide variety of metabolic inhibitors tested, inhibiors of oxidative phosphorylation and of the formation of proton gradients were the most potent inhibitors of transport. From the kinetics of dicarboxylic acid transport (K(m) approximately 10(-4) M for succinate or fumarate in succinic acid dehydrogenase and fumarase mutants) and from the competitive inhibition studies, it was concluded that an inducible dicarboxylic acid transport system mediates the entry of malate, fumarate, or succinate into B. subtilis. Mutants devoid of alpha-ketoglutarate dehydrogenase were shown to accumulate both alpha-ketoglutarate and glutamate, and these metabolites subsequently inhibited the transport of all the C(4)-dicarboxylic acids, suggesting a regulatory role.
MeSH Terms
Aspartic Acid/metabolism
Bacillus subtilis/enzymology,metabolism
Binding, Competitive
Biological Transport, Active
Carbon Isotopes
Citric Acid Cycle
Dicarboxylic Acids/metabolism
Enzyme Induction
Fumarates/metabolism
Glucose/metabolism
Glutamates/metabolism
Glycerol/metabolism
Hydrogen-Ion Concentration
Ketoglutaric Acids/metabolism
Malates/metabolism
Mutation
Oxidative Phosphorylation/drug effects
Succinates/metabolism
Chemicals
Carbon Isotopes
Dicarboxylic Acids
Fumarates
Glutamates
Ketoglutaric Acids
Malates
Succinates
Aspartic Acid
Glucose
Glycerol
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Ghei O K
Kay W W
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