Abstract
Twenty-nine mutants of Bacillus cereus T were selected on casein agar for their inability to produce large amounts of extracellular protease. They all formed spores, and 27 were also auxotrophs for purines or pyrimidines. Upon reversion to prototrophy, a large fraction regained the capacity to produce protease. Conversely, reversion to normal protease production resulted in loss of the purine or pyrimidine requirement in a large fraction of the revertants. One spontaneous low-protease-producing pyrimidine auxotroph studied in detail grew as well as the wild type and produced spores which were identical to those produced by the wild type on the basis of heat resistance, dipicolinic acid content, density, and appearance in the electron microscope. The rate of protein turnover in the mutant was the same as the wild type. The mutant did grow poorly, however, when casein was the principal carbon source. A mutant excreting 5 to 10 times as much protease as the wild type was isolated as a secondary mutation from the hypoproducer discussed above. Loss of the pyrimidine requirement in this case did not alter the regulation of protease production. Although the secondary mutant grew somewhat faster in most media than the wild type, the final cell yield was lower. The spores of this mutant appeared to have excess coat on the basis of both electron microscopic and chemical studies. There appear to be closely related but distinct catabolic controls for both extracellular protease and spore formation. These controls can be dissociated as for the hypoproducers but can also appear integrated as for the hyperprotease producer.
MeSH Terms
Agar
Bacillus cereus/cytology,enzymology,growth & development,metabolism
Carbon Isotopes
Caseins
Densitometry
Electrophoresis, Disc
Genetics, Microbial
Leucine/metabolism
Microscopy, Electron
Mutation
Osmium
Oxides
Peptide Hydrolases/biosynthesis
Purines/metabolism
Pyridines/metabolism
Staining and Labeling
Tromethamine
Chemicals
Carbon Isotopes
Caseins
Oxides
Purines
Pyridines
Tromethamine
Osmium
Agar
Peptide Hydrolases
Leucine
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Aronson A I
Angelo N
Holt S C
References (20)
20 references, click to expand
-
Density gradient centrifugation for the separation of sporulating forms of bacteria.
J Biol Chem. 1966 Mar 10;241(5):1085-90
PMID: 4956662
-
Regulation of the formation of protease in Bacillus megaterium. I. The influence of amino acids on the enzyme formation.
Folia Microbiol (Praha). 1966;11(2):82-8
PMID: 4958280
-
Regulation of extracellular protease production in Bacillus cereus.
J Bacteriol. 1967 Mar;93(3):1023-30
PMID: 4960917
-
Biosynthesis of bacterial spore coats.
J Mol Biol. 1968 Apr 14;33(1):199-212
PMID: 4967204
-
Fine structure of Sporocytophaga myxococcoides.
Arch Mikrobiol. 1967 Jun 21;57(3):199-213
PMID: 4878540
-
Biochemical studies of bacterial sporulation and germaination. VII. Protein turnover during sporulation of Bacillus subtilis.
J Biol Chem. 1968 Sep 10;243(17):4600-5
PMID: 4971699
-
Fine structure of Ectothiorhodospira mobilis strain 8113 thylakoids: chemical fixation and freeze-etching studies.
Arch Mikrobiol. 1968;62(2):111-28
PMID: 5711185
-
Sporulation and the production of antibiotics, exoenzymes, and exotonins.
Bacteriol Rev. 1969 Mar;33(1):48-71
PMID: 4889149
-
Amino acid stimulation of proteinase synthesis in a sporogenous Bacillus megaterium KM.
Biochem Biophys Res Commun. 1969 Oct 8;37(2):233-8
PMID: 4980921
-
Dual control of megateriopeptidase synthesis.
Ann Inst Pasteur (Paris). 1969 Nov;117(5):631-6
PMID: 4983677
-
[Study of megateriopeptidase, an exocellular peptidase of Bacillus megaterium. 3. Biosynthesis and physiological function].
Ann Inst Pasteur (Paris). 1969 Oct;117(4):461-73
PMID: 4983765
-
Conversion of bacterial aldolase from vegetative to spore form by a sporulation-specific protease.
Proc Natl Acad Sci U S A. 1970 Jul;66(3):844-9
PMID: 4987627
-
Protein measurement with the Folin phenol reagent.
J Biol Chem. 1951 Nov;193(1):265-75
PMID: 14907713
-
Enzymatic synthesis of pyrimidine nucleotides; orotidine-5'-phosphate and uridine-5'-phosphate.
J Biol Chem. 1955 Jul;215(1):403-51
PMID: 14392174
-
Colorimetric assay for dipicolinic acid in bacterial spores.
Science. 1958 Jan 3;127(3288):26-7
PMID: 13495474
-
Protein breakdown in Bacillus cereus.
Biochem J. 1959 Mar;71(3):513-8
PMID: 13638258
-
KERATINASE. I. PROPERTIES OF THE ENZYME CONJUGATED ELABORATED BY STREPTOMYCES FRADIAE.
Biochim Biophys Acta. 1963 Sep 3;77:73-86
PMID: 14078975
-
ORGANIC NUTRIENTS REQUIRED FOR GROWTH AND SPORULATION OF BACILLUS CEREUS.
J Bacteriol. 1964 Nov;88:1522-4
PMID: 14234814
-
Protein turnover and the formation of protein inclusions during sporulation of Bacillus thuringiensis.
Biochem J. 1961 Nov;81:225-32
PMID: 14475423
-
Biochemical changes occurring during sporulation of Bacillus cereus. Inhibition of sporulation by alpha-picolinic acid.
J Bacteriol. 1960 Jan;79:1-8
PMID: 13850820