Abstract
L-Malate repressed sporulation in the wild-type strain of Bacillus subtilis. When 75 mM L-malate was added to the growth medium at the time of inoculation, the appearance of heat-resistant spores was delayed 6 to 8 h. The synthesis of extracellular serine protease, alkaline phosphatase, glucose dehydrogenase, and dipicolinic acid was similarly delayed. Sporulation was not repressed when malate was added to the culture at t4 or later. A mutant was selected for ability to sporulate in the presence of malate. This strain could also sporulate in the presence of glucose. The malate-resistant mutant grew poorly with malate as sole carbon source, although it possessed an intact citric acid cycle, and it showed increased levels of malic enzyme. This indicates a defect in the metabolism of malate in the mutant. A mutant lacking malate dehydrogenase activity was also able to sporulate in the presence of malate. A model for the regulation of sporulation by malate is presented and discussed. Citric acid cycle intermediates other than malate did not affect sporulation. In contrast to previous results, sporulation of certain citric acid cycle mutants could be greatly increased or completely restored by the addition of intermediates after the enzymatic block. The results indicate that the failure of citric acid cycle mutants to sporulate can be adequately explained by lack of energy and lack of glutamate.
MeSH Terms
Alcohol Oxidoreductases/metabolism
Alkaline Phosphatase/metabolism
Bacillus subtilis/enzymology,growth & development
Citrates/pharmacology
Citric Acid Cycle
Enzyme Repression
Fumarates/pharmacology
Glutamates/pharmacology
Hot Temperature
Malate Dehydrogenase/metabolism
Malates/pharmacology
Mutation
Oxaloacetates/pharmacology
Peptide Hydrolases/metabolism
Spores, Bacterial/growth & development
Stereoisomerism
Chemicals
Citrates
Fumarates
Glutamates
Malates
Oxaloacetates
Alcohol Oxidoreductases
Malate Dehydrogenase
Alkaline Phosphatase
Peptide Hydrolases
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Ohné M
Rutberg B
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29 references, click to expand
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