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PMID: 4877128 Published · ppublish English Journal Article

Characteristics of the deo operon: role in thymine utilization and sensitivity to deoxyribonucleosides.

Journal of bacteriology ·Vol. 96 ·No. 2 ·1968-08-00 ·Pages 501-14

Lomax MS, Greenberg GR

Abstract

Inability to grow on deoxyribonucleosides as the sole carbon source is characteristic of deo mutants of Escherichia coli. Growth of deoC mutants, which lack deoxyribose 5-phosphate aldolase, is reversibly inhibited by deoxyribonucleosides through inhibition of respiration. By contrast, deoB mutants are not sensitive to deoxyribonucleosides, and deoxyribose 5-phosphate aldolase and thymidine phosphorylase are present at normal levels but are not inducible by thymidine. Organisms with the genotype deoB(-)thy(-) or deoC(-)thy(-) are able to grow on low levels of thymine, whereas deoB(+)thy(-) or deoC(+)thy(-) strains require high levels of thymine for growth. The deoB and deoC mutations are transducible with and map on the counterclockwise side of the threonine marker. They are closely linked to deoA, a gene determining thymidine phosphorylase. Merodiploids heterozygous for either the deoB or deoC genes are resistant to deoxyribonucleosides and, in combination with the thy mutation, require high levels of thymine for growth. Cultures of thy(+)deoC(-) mutants are inhibited by thymidine until this compound has been completely degraded and excreted as deoxyribose and thymine, whereupon growth promptly resumes at a normal rate. The inhibition of respiration in deoC strains and the induction of thymidine phosphorylase and deoxyribose 5-phosphate aldolase in the wild-type organism are considered to result from the accumulation of deoxyribose 5-phosphate.

MeSH Terms
Bacterial Proteins/analysis Chromosome Mapping Conjugation, Genetic DNA, Bacterial/analysis Escherichia coli Extrachromosomal Inheritance Genes Genetics, Microbial Molecular Biology Nucleosides/pharmacology Oxygen Consumption Pentoses/analysis Phenotype RNA, Bacterial/analysis Thymidine/pharmacology Thymine/analysis,metabolism Transduction, Genetic
Chemicals
Bacterial Proteins DNA, Bacterial Nucleosides Pentoses RNA, Bacterial Thymine Thymidine
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Lomax M S
Greenberg G R
References (31)
31 references, click to expand
  1. 2-deoxyribose gene-enzyme complex in Salmonella typhimurium. I. Isolation and enzymatic characterization of 2-deoxyribose-negative mutants.
    J Bacteriol. 1968 Feb;95(2):449-57 PMID: 4867740
  2. The metabolism of exogenously supplied nucleotides by Escherichia coli.
    J Biol Chem. 1960 Feb;235:457-65 PMID: 14416749
  3. Control of the biosynthesis of carbamoyl phosphate in Escherichia coli.
    J Mol Biol. 1965 Nov;14(1):23-36 PMID: 5327652
  4. The enzymatic synthesis of nucleosides. I. Thymidine phosphorylase in mammalian tissue.
    J Biol Chem. 1954 Mar;207(1):245-56 PMID: 13152099
  5. Genetic mapping of a mutation in Escherichia coli showing reduced activity of thymidine phosphorylase.
    J Bacteriol. 1967 Sep;94(3):778-9 PMID: 5340684
  6. Positive control in the L-arabinose gene-enzyme complex of Escherichia coli B/r exhibited with stable merodiploids.
    Cold Spring Harb Symp Quant Biol. 1966;31:345-7 PMID: 4866386
  7. Mutational Site of the Gene Controlling Quantitative Thymine Requirement in ESCHERICHIA COLI K-12.
    Genetics. 1966 Dec;54(6):1329-36 PMID: 17248358
  8. IMPROVED METHOD FOR THE ISOLATION OF THYMINE-REQUIRING MUTANTS OF ESCHERICHIA COLI.
    J Bacteriol. 1965 Aug;90:554-5 PMID: 14329476
  9. Acetylornithinase of Escherichia coli: partial purification and some properties.
    J Biol Chem. 1956 Jan;218(1):97-106 PMID: 13278318
  10. Studies on phosphodeoxyribomutase.
    Biochim Biophys Acta. 1961 Sep 2;52:184-93 PMID: 13914169
  11. Thymine incorporation and metabolism by various classes of thymine-less bacteria.
    J Gen Microbiol. 1965 Dec;41(3):321-33 PMID: 5327414
  12. A study of the conditions and mechanism of the diphenylamine reaction for the colorimetric estimation of deoxyribonucleic acid.
    Biochem J. 1956 Feb;62(2):315-23 PMID: 13293190
  13. Revised linkage map of Escherichia coli.
    Bacteriol Rev. 1967 Dec;31(4):332-53 PMID: 4865540
  14. Enzymatic synthesis and breakdown of desoxyribose phosphate.
    J Biol Chem. 1952 May;196(1):347-65 PMID: 12980976
  15. Selecting bacterial mutants by the penicillin method.
    Science. 1960 Feb 26;131(3400):604-5 PMID: 13851300
  16. Limited thymidine uptake in Escherichia coli due to an inducible thymidine phosphorylase.
    Biochim Biophys Acta. 1961 Apr 29;49:222-5 PMID: 13738908
  17. SUBSTRATE SPECIFICITY AND INDUCTION OF THYMIDINE PHOSPHORYLASE IN ESCHERICHIA COLI.
    J Biol Chem. 1964 Jun;239:1789-93 PMID: 14213352
  18. Metabolism of thymineless mutants of Escherichia coli. I. Absence of thymidylate synthetase activity and growth characteristics of two sequential thymineless mutants.
    J Bacteriol. 1967 Mar;93(3):845-52 PMID: 5337838
  19. Determination of the order of mutational sites governing L-arabinose utilization in Escherichia coli B/r bv transduction with phage Plbt.
    Virology. 1959 Nov;9:314-31 PMID: 13829634
  20. A genetical study of thymineless mutants of E. coli K12.
    Genet Res. 1966 Aug;8(1):83-100 PMID: 5329976
  21. Transduction of linked genetic characters of the host by bacteriophage P1.
    Virology. 1955 Jul;1(2):190-206 PMID: 13267987
  22. A BIOCHEMICAL AND GENETIC STUDY OF REVERSION WITH THE A-GENE A-PROTEIN SYSTEM OF ESCHERICHIA COLI TRYPTOPHAN SYNTHETASE.
    Genetics. 1963 Aug;48:1065-83 PMID: 14050802
  23. Thymidine and thymine incorporation into deoxyribonucleic acid: inhibition and repression by uridine of thymidine phosphorylase of Escherichia coli.
    J Bacteriol. 1967 Nov;94(5):1546-50 PMID: 4862197
  24. Production of bacterial mutants with nitrous acid.
    Nature. 1959 Jun 27;183:1829-30 PMID: 14404843
  25. Inability of low thymine-requiring mutants of Escherichia coli lacking phosphodeoxyribomutase to be induced for deoxythymidine phosphorylase and deoxyriboaldolase.
    J Bacteriol. 1968 Jun;95(6):2434-5 PMID: 4876138
  26. Products of desoxyribose degradation by Escherichia coli.
    J Biol Chem. 1952 Oct;198(2):885-93 PMID: 12999806
  27. Protein measurement with the Folin phenol reagent.
    J Biol Chem. 1951 Nov;193(1):265-75 PMID: 14907713
  28. INABILITY OF THYMINE-DEPENDENT MUTANTS OF BACTERIOPHAGE T4 TO INDUCE THYMIDYLATE SYNTHETASE.
    Proc Natl Acad Sci U S A. 1965 Apr;53:874-81 PMID: 14324546
  29. Mutant bacteria showing efficient utilization of thymidine.
    J Bacteriol. 1966 Jun;91(6):2390-1 PMID: 5329290
  30. A method for securing thymineless mutants from strains of E. coli.
    Z Vererbungsl. 1961;92:403-12 PMID: 14481497
  31. The absence of deoxyriboaldolase activity in a thymineless mutant of Escherichia coli strain 15: a possible explanation for the low thymine requirement of some thymineless strains.
    Biochim Biophys Acta. 1967 Mar 29;138(1):217-20 PMID: 4860428
Article Info
Journal
Journal of bacteriology
Abbr.
J Bacteriol
ISSN
0021-9193
Published
1968-08-00
Pages
501-14
Language
English
Region
United States
NLM ID
2985120R
PMCID
PMC252324
Subset
IM
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