Home LiteratureArticle Details
PMID: 8052232 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Glucose repression in Streptomyces coelicolor A3(2): a likely regulatory role for glucose kinase.

Molecular & general genetics : MGG ·Vol. 244 ·No. 2 ·1994-07-25 ·Pages 135-43

Angell S, Lewis CG, Buttner MJ, Bibb MJ

Abstract

The glucose kinase gene (glkA-ORF3) of Streptomyces coelicolor A3(2) plays an essential role in glucose utilisation and in glucose repression of a variety of genes involved in the utilisation of alternative carbon sources. These genes include dagA, which encodes an extracellular agarase that permits agar utilisation. Suppressor mutants of glkA-ORF3 deletion strains capable of utilising glucose (Glc+) arise at a frequency of about 10(-5) on prolonged incubation. The Glc+ phenotype of the mutants is reversible (at a frequency of about 10(-3) and reflects either the activation of a normally silent glucose kinase gene or the modification of an existing sugar kinase. Although the level of glucose kinase activity in the Glc+ supressor mutants is similar to that in the glkA+ parental strain, glucose repression of dagA remains defective. Expression of the glucose kinase gene of Zymomonas mobilis in glkA-ORF3 mutants restored glucose utilisation, but not glucose repression of dagA. Over-expression of glkA-ORF3 on a high-copy-number plasmid failed to restore glucose repression of dagA in glkA-ORF3 mutants and led to loss of glucose repression of dagA in a glkA+ strain. These results suggest that glucose phosphorylation itself is not sufficient for glucose repression and that glkA-ORF3 plays a specific regulatory role in triggering glucose repression in S. coelicolor A3(2).

Related Genes
MeSH Terms
Blotting, Southern DNA, Bacterial/analysis,metabolism Enzyme Repression Genes, Bacterial Genotype Glucokinase/biosynthesis,genetics,metabolism Glucose/metabolism,pharmacology Open Reading Frames Phenotype Recombinant Proteins/biosynthesis,metabolism Streptomyces/drug effects,enzymology,genetics Zymomonas
Chemicals
DNA, Bacterial Recombinant Proteins Glucokinase Glucose
Authors & Affiliations
4 authors, click to expand affiliations / ORCID
Angell S
John Innes Centre, Colney, Norwich, UK.
Lewis C G
Buttner M J
Bibb M J
References (42)
42 references, click to expand
  1. Simultaneous purification and characterization of glucokinase, fructokinase and glucose-6-phosphate dehydrogenase from Zymomonas mobilis.
    Biochem J. 1985 Jun 15;228(3):627-34 PMID: 2992451
  2. Construction and characterization of Streptomyces coelicolor A3(2) mutants that are multiply deficient in the nonessential hrd-encoded RNA polymerase sigma factors.
    J Bacteriol. 1992 Aug;174(15):5165-7 PMID: 1629177
  3. Cloning, characterisation and regulation of an alpha-amylase gene from Streptomyces venezuelae.
    Gene. 1988 Dec 30;74(2):321-34 PMID: 3266752
  4. Recombinational switch for gene expression.
    Science. 1977 Apr 8;196(4286):170-2 PMID: 322276
  5. Glycerol catabolic enzymes and their regulation in wild-type and mutant strains of Streptomyces coelicolor A3(2).
    J Gen Microbiol. 1983 May;129(5):1403-13 PMID: 6619799
  6. Catabolite repression in Streptomyces venezuelae. Induction of beta-galactosidase, chloramphenicol production, and intracellular cyclic adenosine 3',5'-monophosphate concentrations.
    Can J Microbiol. 1982 Mar;28(3):311-7 PMID: 6282428
  7. The hexokinase isoenzyme PII of Saccharomyces cerevisiae ia a protein kinase.
    J Gen Microbiol. 1989 May;135(5):1209-16 PMID: 2559946
  8. The hexokinase gene is required for transcriptional regulation of the glucose transporter gene RAG1 in Kluyveromyces lactis.
    Mol Cell Biol. 1993 Jul;13(7):3882-9 PMID: 8321195
  9. The glucose kinase gene of Streptomyces coelicolor and its use in selecting spontaneous deletions for desired regions of the genome.
    Mol Gen Genet. 1987 Jan;206(1):35-44 PMID: 3033439
  10. Identification and properties of an inducible and highly specific fructokinase from Streptomyces violaceoruber.
    Biochim Biophys Acta. 1972 Oct 12;284(2):414-20 PMID: 4635822
  11. The glucose-6-phosphate-isomerase reaction is essential for normal glucose repression in Saccharomyces cerevisiae.
    Eur J Biochem. 1993 May 15;214(1):121-7 PMID: 8508783
  12. The stringent response in Streptomyces coelicolor A3(2).
    Mol Microbiol. 1991 Feb;5(2):289-98 PMID: 1710311
  13. Sequence and genetic organization of a Zymomonas mobilis gene cluster that encodes several enzymes of glucose metabolism.
    J Bacteriol. 1990 Dec;172(12):7227-40 PMID: 2254282
  14. "A technique for radiolabeling DNA restriction endonuclease fragments to high specific activity". Addendum.
    Anal Biochem. 1984 Feb;137(1):266-7 PMID: 6329026
  15. The molecular mechanism of phase variation of H. influenzae lipopolysaccharide.
    Cell. 1989 Nov 17;59(4):657-65 PMID: 2479481
  16. The Streptomyces plasmid SCP2*: its functional analysis and development into useful cloning vectors.
    Gene. 1985;35(3):223-35 PMID: 2995202
  17. The residual enzymatic phosphorylation activity of hexokinase II mutants is correlated with glucose repression in Saccharomyces cerevisiae.
    Mol Cell Biol. 1989 Dec;9(12):5643-9 PMID: 2685572
  18. Autophosphorylation of yeast hexokinase PII.
    J Gen Microbiol. 1988 Sep;134(9):2493-8 PMID: 3076185
  19. Analysis of Streptomyces avermitilis genes required for avermectin biosynthesis utilizing a novel integration vector.
    Gene. 1992 Feb 1;111(1):61-8 PMID: 1547955
  20. Directed evolution of a bacterial operon.
    Bioessays. 1990 Nov;12(11):551-8 PMID: 2085322
  21. The glucose kinase gene of Streptomyces coelicolor A3(2): its nucleotide sequence, transcriptional analysis and role in glucose repression.
    Mol Microbiol. 1992 Oct;6(19):2833-44 PMID: 1435260
  22. Genetic mapping, cloning and physiological aspects of the glucose kinase gene of Streptomyces coelicolor.
    Mol Gen Genet. 1984;196(3):501-7 PMID: 6094978
  23. A technique for radiolabeling DNA restriction endonuclease fragments to high specific activity.
    Anal Biochem. 1983 Jul 1;132(1):6-13 PMID: 6312838
  24. Protein phosphorylation and allosteric control of inducer exclusion and catabolite repression by the bacterial phosphoenolpyruvate: sugar phosphotransferase system.
    Microbiol Rev. 1989 Mar;53(1):109-20 PMID: 2651862
  25. Genetic organization and regulation of the xylose degradation genes in Streptomyces rubiginosus.
    J Bacteriol. 1991 Nov;173(21):6849-58 PMID: 1657868
  26. Glucose repression in Saccharomyces cerevisiae is directly associated with hexose phosphorylation by hexokinases PI and PII.
    Eur J Biochem. 1991 Aug 1;199(3):511-8 PMID: 1868842
  27. Detection of specific sequences among DNA fragments separated by gel electrophoresis.
    J Mol Biol. 1975 Nov 5;98(3):503-17 PMID: 1195397
  28. Transport of galactose, glucose and their molecular analogues by Escherichia coli K12.
    Biochem J. 1977 Feb 15;162(2):309-20 PMID: 15558
  29. Phosphorylation of D-glucose in Escherichia coli mutants defective in glucosephosphotransferase, mannosephosphotransferase, and glucokinase.
    J Bacteriol. 1975 Jun;122(3):1189-99 PMID: 1097393
  30. A multiplicity of potential carbon catabolite repression mechanisms in prokaryotic and eukaryotic microorganisms.
    New Biol. 1991 Dec;3(12):1137-47 PMID: 1667478
  31. Derivatives of pUC18 that have BglII sites flanking a modified multiple cloning site and that retain the ability to identify recombinant clones by visual screening of Escherichia coli colonies.
    Gene. 1993 Feb 14;124(1):133-4 PMID: 8382652
  32. Improved detection of helix-turn-helix DNA-binding motifs in protein sequences.
    Nucleic Acids Res. 1990 Sep 11;18(17):5019-26 PMID: 2402433
  33. Use of sodium trichloroacetate and mung bean nuclease to increase sensitivity and precision during transcript mapping.
    Anal Biochem. 1986 Oct;158(1):165-70 PMID: 2432801
  34. Phase variation in Bordetella pertussis by frameshift mutation in a gene for a novel two-component system.
    Nature. 1989 Mar 16;338(6212):266-9 PMID: 2537932
  35. Antigenic variation. Modulating bacterial virulence.
    Nature. 1989 Apr 20;338(6217):622-3 PMID: 2565019
  36. Improved M13 phage cloning vectors and host strains: nucleotide sequences of the M13mp18 and pUC19 vectors.
    Gene. 1985;33(1):103-19 PMID: 2985470
  37. Cloning and expression of the tyrosinase gene from Streptomyces antibioticus in Streptomyces lividans.
    J Gen Microbiol. 1983 Sep;129(9):2703-14 PMID: 6313861
  38. A rapid and sensitive method for the quantitation of microgram quantities of protein utilizing the principle of protein-dye binding.
    Anal Biochem. 1976 May 7;72:248-54 PMID: 942051
  39. Amplified DNA in Streptomyces fradiae.
    J Bacteriol. 1983 Aug;155(2):459-66 PMID: 6307966
  40. Cloning, characterization and regulation of an alpha-amylase gene from Streptomyces limosus.
    Mol Microbiol. 1988 Mar;2(2):197-208 PMID: 3260002
  41. The agarase gene (dagA) of Streptomyces coelicolor A3(2): nucleotide sequence and transcriptional analysis.
    Mol Gen Genet. 1987 Aug;209(1):101-9 PMID: 17165236
  42. Elevated glucose 6-phosphate levels are associated with plasmid mutations in vivo.
    Proc Natl Acad Sci U S A. 1987 Dec;84(23):8311-4 PMID: 2825185
Article Info
Journal
Molecular & general genetics : MGG
Abbr.
Mol Gen Genet
ISSN
0026-8925
Published
1994-07-25
Pages
135-43
Language
English
Region
Germany
NLM ID
0125036
Subset
IM
Analysis Services
Analysis Services

Contact

No. 2 Wenbo Road, Zhangqiu District, Jinan, Shandong

Qilu Normal University · Genelibs Bioinformatics Lab

750 Shunhua Rd, Jinan

2F, Bldg F, University Science Park

Tel: 0531-88819269

WeChat Official Account

Follow our WeChat subscription account for real-time updates and the latest in medical and biological research.


Business Email

E-mail: product@genelibs.com