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PMID: 4167433 Published · ppublish English Journal Article

The regulatory process in the de-repression of enzyme synthesis. Alkaline phosphatase of Bacillus subtilis.

The Biochemical journal ·Vol. 103 ·No. 3 ·1967-06-00 ·Pages 650-9

Moses V

Abstract

1. The kinetics of de-repression of alkaline phosphatase in Bacillus subtilis were studied after the removal of P(i). Enzyme activity appeared about 10min. after removal of P(i), whereas ;enzyme-forming potential' appeared after 6min. 2. Protein synthesis is not impaired for at least 20min. on removal of P(i), but RNA synthesis is considerably diminished. 3. Adding chloramphenicol to cells without P(i), just at the time they start to make enzyme-forming potential, does not affect the differential rate of enzyme synthesis compared with total protein. Enzyme-forming potential accumulates to about normal levels in the presence of chloramphenicol, even though peptide-bond formation is inhibited by more than 95%. 4. Similar experiments performed with actinomycin C show more complex effects. Actinomycin initially prevents RNA synthesis and also the synthesis of enzyme-forming potential. After some minutes RNA synthesis resumes at a low rate, to be followed 4min. later by enzyme synthesis. Enzyme-forming potential can accumulate in the presence of actinomycin after the resumption of RNA synthesis. Protein synthesis, initially inhibited by actinomycin as a consequence of the effect on RNA synthesis, is later directly inhibited by actinomycin. 5. Adding actinomycin to de-repressed cells already making enzyme stops enzyme synthesis within 4-5min. Enzyme synthesis resumes, as before, 4min. after the resumption of RNA synthesis. 6. Adding P(i) together with actinomycin to de-repressed cells synthesizing enzyme does not result in a lower yield of enzyme compared with actinomycin alone. 7. Actinomycin is less effective an inhibitor of RNA and protein synthesis in P(i)-starved cells if P(i) is also added. 8. These results are discussed in view of the three main models for the regulation of enzyme induction: regulation at the level of transcription only, at translation only, or a coupled model in which transcription requires concomitant translation. It is concluded that the present evidence most powerfully supports the model of transcriptional regulation.

MeSH Terms
Alkaline Phosphatase/biosynthesis Bacillus subtilis/drug effects,enzymology Bacterial Proteins/biosynthesis Chloramphenicol/pharmacology Dactinomycin/pharmacology Enzyme Repression Kinetics Phenylalanine/metabolism RNA, Bacterial/biosynthesis Tritium Uracil/metabolism
Chemicals
Bacterial Proteins RNA, Bacterial Tritium Dactinomycin Phenylalanine Uracil Chloramphenicol Alkaline Phosphatase
Authors & Affiliations
1 authors, click to expand affiliations / ORCID
Moses V
References (16)
16 references, click to expand
  1. Regulation of enzyme synthesis in an enucleate cell.
    Biochem J. 1964 May;91(2):282-6 PMID: 4284487
  2. Lifetime of bacterial messenger ribonucleic acid.
    J Bacteriol. 1965 Nov;90(5):1205-17 PMID: 5321476
  3. Genetic transcription.
    Proc R Soc Lond B Biol Sci. 1966 Mar 22;164(995):181-97 PMID: 4379509
  4. Effect of actinomycin on the synthesis of macromolecules in Escherichia coli.
    Biochim Biophys Acta. 1966 Apr 18;119(1):200-3 PMID: 4163800
  5. Catabolite repression of beta-galactosidase synthesis in Escherichia coli.
    Biochem J. 1966 Aug;100(2):336-53 PMID: 5338805
  6. Involvement of the lac regulatory genes in catabolite repression in Escherichia coli.
    Biochem J. 1967 May;103(2):358-66 PMID: 5340365
  7. Studies on a mutant of Escherichia coli with unbalanced ribonucleic acid synthesis. II. The concomitance of ribonucleic acid synthesis with resumed protein synthesis.
    J Bacteriol. 1958 Jan;75(1):72-6 PMID: 13513564
  8. Genetic regulatory mechanisms in the synthesis of proteins.
    J Mol Biol. 1961 Jun;3:318-56 PMID: 13718526
  9. Thymine starvation and enzyme synthesis.
    Biochim Biophys Acta. 1960 Dec 18;45:610-2 PMID: 13773908
  10. Messenger RNA turnover and protein synthesis in B. subtilis inhibited by actinomycin D.
    Proc Natl Acad Sci U S A. 1962 Sep 15;48:1631-8 PMID: 14464688
  11. KINETICS OF INDUCED ENZYME SYNTHESIS. DETERMINATION OF THE MEAN LIFE OF GALACTOSIDASE-SPECIFIC MESSENGER RNA.
    Biochim Biophys Acta. 1963 Oct 15;76:293-309 PMID: 14097386
  12. THE OPERON: ON ITS THIRD ANNIVERSARY. MODULATION OF TRANSFER RNA SPECIES CAN PROVIDE A WORKABLE MODEL OF AN OPERATOR-LESS OPERON.
    Science. 1964 May 15;144(3620):816-20 PMID: 14149392
  13. THE ROLES OF INDUCER AND CATABOLITE REPRESSOR IN THE SYNTHESIS OF BETA-GALACTOSIDASE BY ESCHERICHIA COLI.
    J Mol Biol. 1964 Jan;8:105-27 PMID: 14149954
  14. RNA AND PROTEIN SYNTHESIS REQUIRED FOR BACTERIAL SPORE FORMATION.
    Biochim Biophys Acta. 1964 Jun 22;87:267-76 PMID: 14192366
  15. Influence of inorganic phosphate in the formation of phosphatases by Escherichia coli.
    Biochim Biophys Acta. 1960 Mar 11;38:460-9 PMID: 13838951
  16. ON THE USE OF ACTINOMYCIN FOR OBSERVING THE TURNOVER OF RIBONUCLEIC ACID.
    Biochim Biophys Acta. 1965 Feb 8;95:351-3 PMID: 14293709
Article Info
Journal
The Biochemical journal
Abbr.
Biochem J
ISSN
0264-6021
Published
1967-06-00
Pages
650-9
Language
English
Region
England
NLM ID
2984726R
PMCID
PMC1270464
Subset
IM
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