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PMID: 3920203 Published · ppublish English Journal Article

Lactose metabolism in Streptococcus lactis: studies with a mutant lacking glucokinase and mannose-phosphotransferase activities.

Journal of bacteriology ·Vol. 162 ·No. 1 ·1985-04-00 ·Pages 217-23

Thompson J, Chassy BM, Egan W

Abstract

A mutant of Streptococcus lactis 133 has been isolated that lacks both glucokinase and phosphoenolpyruvate-dependent mannose-phosphotransferase (mannose-PTS) activities. The double mutant S. lactis 133 mannose-PTSd GK- is unable to utilize either exogenously supplied or intracellularly generated glucose for growth. Fluorographic analyses of metabolites formed during the metabolism of [14C]lactose labeled specifically in the glucose or galactosyl moiety established that the cells were unable to phosphorylate intracellular glucose. However, cells of S. lactis 133 mannose-PTSd GK- readily metabolized intracellular glucose 6-phosphate, and the growth rates and cell yield of the mutant and parental strains on sucrose were the same. During growth on lactose, S. lactis 133 mannose-PTSd GK- fermented only the galactose moiety of the disaccharide, and 1 mol of glucose was generated per mol of lactose consumed. For an equivalent concentration of lactose, the cell yield of the mutant was 50% that of the wild type. The specific rate of lactose utilization by growing cells of S. lactis 133 mannose-PTSd GK- was ca. 50% greater than that of the wild type, but the cell doubling times were 70 and 47 min, respectively. High-resolution 31P nuclear magnetic resonance studies of lactose transport by starved cells of S. lactis 133 and S. lactis 133 mannose-PTSd GK- showed that the latter cells contained elevated lactose-PTS activity. Throughout exponential growth on lactose, the mutant maintained an intracellular steady-state glucose concentration of 100 mM. We conclude from our data that phosphorylation of glucose by S. lactis 133 can be mediated by only two mechanisms: (i) via ATP-dependent glucokinase, and (ii) by the phosphoenolpyruvate-dependent mannose-PTS system.

MeSH Terms
Biological Transport Carbon Radioisotopes Fermentation Glucokinase/deficiency Glucose/metabolism Lactococcus lactis/growth & development,metabolism Lactose/metabolism Magnetic Resonance Spectroscopy Mutation Phosphoenolpyruvate Sugar Phosphotransferase System/deficiency Phosphorylation
Chemicals
Carbon Radioisotopes Phosphoenolpyruvate Sugar Phosphotransferase System phosphoenolpyruvate-mannose phosphotransferase Glucokinase Glucose Lactose
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Thompson J
Chassy B M
Egan W
References (29)
29 references, click to expand
  1. Regulation and function of sucrose 6-phosphate hydrolase in Streptococcus mutans.
    Infect Immun. 1979 Nov;26(2):487-91 PMID: 94907
  2. Uptake and metabolism of sucrose by Streptococcus lactis.
    J Bacteriol. 1981 Aug;147(2):543-51 PMID: 6267012
  3. Molecular cloning of the lactose-metabolizing genes from Streptococcus lactis.
    Appl Environ Microbiol. 1984 Aug;48(2):347-51 PMID: 6091547
  4. The importance of inorganic phosphate in regulation of energy metabolism of Streptococcus lactis.
    J Biol Chem. 1981 Feb 25;256(4):1861-6 PMID: 6780554
  5. Lactose transport coupled to proton movements in Escherichia coli.
    Biochem Biophys Res Commun. 1970 Nov 9;41(3):655-61 PMID: 4920870
  6. THE UTILIZATION OF GLUCOSE 6-PHOSPHATE BY GLUCOKINASELESS AND WILD-TYPE STRAINS OF ESCHERICHIA COLI.
    Proc Natl Acad Sci U S A. 1964 Nov;52:1207-13 PMID: 14231443
  7. Mechanisms of lactose utilization by lactic acid streptococci: enzymatic and genetic analyses.
    J Bacteriol. 1970 Jun;102(3):804-9 PMID: 5429725
  8. Regulation of product formation during glucose or lactose limitation in nongrowing cells of Streptococcus lactis.
    Appl Environ Microbiol. 1984 Aug;48(2):332-7 PMID: 6435521
  9. Lactose and D-galactose metabolism in group N streptococci: presence of enzymes for both the D-galactose 1-phosphate and D-tagatose 6-phosphate pathways.
    J Bacteriol. 1974 Jan;117(1):318-20 PMID: 4358045
  10. In vivo regulation of glycolysis and characterization of sugar: phosphotransferase systems in Streptococcus lactis.
    J Bacteriol. 1978 Nov;136(2):465-76 PMID: 101523
  11. Novel phosphoenolpyruvate-dependent futile cycle in Streptococcus lactis: 2-deoxy-D-glucose uncouples energy production from growth.
    J Bacteriol. 1982 Sep;151(3):1454-65 PMID: 6286601
  12. Use of 31P nuclear magnetic resonance spectroscopy and 14C fluorography in studies of glycolysis and regulation of pyruvate kinase in Streptococcus lactis.
    J Bacteriol. 1984 Jun;158(3):791-800 PMID: 6427193
  13. Phosphorylation of D-glucose in Escherichia coli mutants defective in glucosephosphotransferase, mannosephosphotransferase, and glucokinase.
    J Bacteriol. 1975 Jun;122(3):1189-99 PMID: 1097393
  14. The enzymatic lesion of strain MM-6, a pleiotropic carbohydrate-negative mutant of Escherichia coli.
    Biochem Biophys Res Commun. 1967 Apr 7;27(1):63-7 PMID: 4862174
  15. Intracellular phosphorylation of glucose analogs via the phosphoenolpyruvate: mannose-phosphotransferase system in Streptococcus lactis.
    J Bacteriol. 1985 Apr;162(1):224-34 PMID: 3920204
  16. Involvement of phosphoenolpyruvate in lactose utilization by group N streptococci.
    J Bacteriol. 1969 Aug;99(2):603-10 PMID: 5808082
  17. Plasmid linkage of the D-tagatose 6-phosphate pathway in Streptococcus lactis: effect on lactose and galactose metabolism.
    J Bacteriol. 1983 Jan;153(1):76-83 PMID: 6294064
  18. Purification and kinetic characterization of a specific glucokinase from Streptococcus mutans OMZ70 cells.
    Biochim Biophys Acta. 1982 Dec 20;709(2):178-86 PMID: 7150605
  19. Initial characterization of sucrose-6-phosphate hydrolase from Streptococcus mutans and its apparent identity with intracellular invertase.
    Biochem Biophys Res Commun. 1979 Jul 12;89(1):307-14 PMID: 224874
  20. The bacterial phosphoenolpyruvate: sugar phosphotransferase system.
    Biochim Biophys Acta. 1976 Dec 14;457(3-4):213-57 PMID: 187249
  21. Regulation of methyl-beta-d-thiogalactopyranoside-6-phosphate accumulation in Streptococcus lactis by exclusion and expulsion mechanisms.
    J Bacteriol. 1981 Jun;146(3):885-94 PMID: 6787017
  22. Regulation of lactose fermentation in group N streptococci.
    Appl Environ Microbiol. 1976 Oct;32(4):474-8 PMID: 16345174
  23. The enzymology of the bacterial phosphoenolpyruvate-dependent sugar transport systems.
    Mol Cell Biochem. 1982 Jul 7;46(1):3-24 PMID: 7050654
  24. Phosphoenolpyruvate and 2-phosphoglycerate: endogenous energy source(s) for sugar accumulation by starved cells of Streptococcus lactis.
    J Bacteriol. 1977 May;130(2):583-95 PMID: 122509
  25. Lactose metabolism in Streptococcus lactis: phosphorylation of galactose and glucose moieties in vivo.
    J Bacteriol. 1979 Dec;140(3):774-85 PMID: 118155
  26. D-tagatose 1,6-diphosphate aldolase from lactic streptococci: purification, properties, and use in measuring intracellular tagatose 1,6-diphosphate.
    J Bacteriol. 1982 Aug;151(2):600-8 PMID: 6807956
  27. Galactose fermentation by Streptococcus lactis and Streptococcus cremoris: pathways, products, and regulation.
    J Bacteriol. 1980 Nov;144(2):672-82 PMID: 6776093
  28. Lactose hydrolysing enzymes in Streptococcus lactis and Streptococcus cremoris and also in some other species of streptococci.
    J Appl Bacteriol. 1980 Dec;49(3):493-503 PMID: 6783605
  29. Beta-D-phosphogalactoside galactohydrolase from Streptococcus cremoris HP: purification and enzyme properties.
    J Bacteriol. 1974 Feb;117(2):667-74 PMID: 4204438
Article Info
Journal
Journal of bacteriology
Abbr.
J Bacteriol
ISSN
0021-9193
Published
1985-04-00
Pages
217-23
Language
English
Region
United States
NLM ID
2985120R
PMCID
PMC218977
Subset
IM
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