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PMID: 9922238 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Molecular characterization of the Lactococcus lactis ptsHI operon and analysis of the regulatory role of HPr.

Journal of bacteriology ·Vol. 181 ·No. 3 ·1999-02-00 ·Pages 764-71

Luesink EJ, Beumer CM, Kuipers OP, De Vos WM

Abstract

The Lactococcus lactis ptsH and ptsI genes, encoding the general proteins of the phosphoenolpyruvate-dependent phosphotransferase system, HPr and enzyme I, respectively, were cloned, and the regulatory role of HPr was studied by mutational analysis of its gene. A promoter sequence was identified upstream of the ptsHI operon, and the transcription start site was mapped by primer extension. The results of Northern analyses showed the presence of two glucose-inducible transcripts, one of 0.3 kb containing ptsH and a second of 2.0 kb containing both ptsH and ptsI. Disruption of the ptsH and ptsI genes in strain NZ9800 resulted in a reduced growth rate at the expense of glucose, but no growth at the expense of sucrose and fructose, confirming the dominant role of the phosphotransferase system in the uptake of these sugars in L. lactis. Complementation of the ptsH and ptsI mutants with the intact genes under the control of a regulated promoter resulted in the restoration of the wild-type phenotype. The role of HPr(Ser-P) in the recently established CcpA-mediated control of galactose metabolism as well as glycolysis was analyzed by producing an HPr mutant carrying an aspartic acid on residue 46 which mimicks a phosphorylated serine. The results of these experiments demonstrated the role of HPr(Ser-P) as corepressor in the catabolite repression of the gal operon. Furthermore, we show for the first time that HPr(Ser-P) functions as a coactivator in the CcpA-mediated catabolite activation of the pyruvate kinase and L-lactate dehydrogenase genes.

MeSH Terms
Bacterial Proteins/genetics,metabolism Cloning, Molecular Gene Expression Regulation, Bacterial L-Lactate Dehydrogenase/metabolism Lactococcus lactis/enzymology,genetics,growth & development Operon Phosphoenolpyruvate Sugar Phosphotransferase System/genetics,metabolism Phosphotransferases (Nitrogenous Group Acceptor)/genetics,metabolism Plasmids Pyruvate Kinase/metabolism Recombinant Proteins/metabolism Restriction Mapping
Chemicals
Bacterial Proteins Recombinant Proteins L-Lactate Dehydrogenase Phosphoenolpyruvate Sugar Phosphotransferase System phosphocarrier protein HPr Pyruvate Kinase Phosphotransferases (Nitrogenous Group Acceptor) phosphoenolpyruvate-protein phosphotransferase
Authors & Affiliations
4 authors, click to expand affiliations / ORCID
Luesink E J
Microbial Ingredients Section, NIZO Food Research, 6710 BA Ede, The Netherlands.
Beumer C M
Kuipers O P
De Vos W M
References (44)
44 references, click to expand
  1. Transcriptional activation of the glycolytic las operon and catabolite repression of the gal operon in Lactococcus lactis are mediated by the catabolite control protein CcpA.
    Mol Microbiol. 1998 Nov;30(4):789-98 PMID: 10094627
  2. Induction of the Bacillus subtilis ptsGHI operon by glucose is controlled by a novel antiterminator, GlcT.
    Mol Microbiol. 1997 Jul;25(1):65-78 PMID: 11902727
  3. Specificity determinants and structural features in the RNA target of the bacterial antiterminator proteins of the BglG/SacY family.
    Proc Natl Acad Sci U S A. 1992 Nov 1;89(21):10410-4 PMID: 1279678
  4. Positive regulation of the expression of the Escherichia coli pts operon. Identification of the regulatory regions.
    J Mol Biol. 1992 Aug 5;226(3):623-35 PMID: 1324322
  5. Staphylococcal phosphoenolpyruvate-dependent phosphotransferase system: molecular cloning and nucleotide sequence of the Staphylococcus carnosus ptsI gene and expression and complementation studies of the gene product.
    J Bacteriol. 1992 Apr;174(7):2208-14 PMID: 1551842
  6. High-Frequency Transformation, by Electroporation, of Lactococcus lactis subsp. cremoris Grown with Glycine in Osmotically Stabilized Media.
    Appl Environ Microbiol. 1989 Dec;55(12):3119-23 PMID: 16348073
  7. Stability of Integrated Plasmids in the Chromosome of Lactococcus lactis.
    Appl Environ Microbiol. 1990 Sep;56(9):2726-35 PMID: 16348281
  8. Improved site-directed mutagenesis method using PCR.
    Nucleic Acids Res. 1991 Aug 25;19(16):4558 PMID: 1886781
  9. Site-directed mutagenesis of a catabolite repression operator sequence in Bacillus subtilis.
    Proc Natl Acad Sci U S A. 1990 Aug;87(16):6238-42 PMID: 2117276
  10. Isolation and characterization of Streptococcus cremoris Wg2-specific promoters.
    Appl Environ Microbiol. 1987 Oct;53(10):2452-7 PMID: 2447829
  11. A maturation protein is essential for production of active forms of Lactococcus lactis SK11 serine proteinase located in or secreted from the cell envelope.
    J Bacteriol. 1989 May;171(5):2795-802 PMID: 2496115
  12. Phosphoenolpyruvate:sugar phosphotransferase system of Bacillus subtilis: nucleotide sequence of ptsX, ptsH and the 5'-end of ptsI and evidence for a ptsHI operon.
    Mol Microbiol. 1989 Jan;3(1):103-12 PMID: 2497294
  13. Improved M13 phage cloning vectors and host strains: nucleotide sequences of the M13mp18 and pUC19 vectors.
    Gene. 1985;33(1):103-19 PMID: 2985470
  14. Constitutive expression of erythromycin resistance mediated by the ermAM determinant of plasmid pAM beta 1 results from deletion of 5' leader peptide sequences.
    Plasmid. 1987 Nov;18(3):250-3 PMID: 3127839
  15. Lactose metabolism in Streptococcus lactis: studies with a mutant lacking glucokinase and mannose-phosphotransferase activities.
    J Bacteriol. 1985 Apr;162(1):217-23 PMID: 3920203
  16. The bacterial phosphoenolpyruvate-dependent phosphotransferase system. Isolation of active site peptides by reversed-phase high-performance liquid chromatography and determination of their primary structure.
    J Chromatogr. 1985 Jun 19;326:363-71 PMID: 3928666
  17. Pyruvate kinase of Streptococcus lactis.
    J Bacteriol. 1974 Oct;120(1):52-8 PMID: 4214503
  18. ATP-dependent protein kinase-catalyzed phosphorylation of a seryl residue in HPr, a phosphate carrier protein of the phosphotransferase system in Streptococcus pyogenes.
    Proc Natl Acad Sci U S A. 1983 Nov;80(22):6790-4 PMID: 6359157
  19. L-Lactate dehydrogenase, FDP-activated, from Streptococcus cremoris.
    Methods Enzymol. 1982;89 Pt D:362-7 PMID: 7144579
  20. The HPr protein of the phosphotransferase system links induction and catabolite repression of the Bacillus subtilis levanase operon.
    J Bacteriol. 1995 Dec;177(23):6928-36 PMID: 7592487
  21. Purification and characterization of a small membrane-associated sugar phosphate phosphatase that is allosterically activated by HPr(Ser(P)) of the phosphotransferase system in Lactococcus lactis.
    J Biol Chem. 1995 Jul 14;270(28):16740-4 PMID: 7622485
  22. Protein kinase-dependent HPr/CcpA interaction links glycolytic activity to carbon catabolite repression in gram-positive bacteria.
    Mol Microbiol. 1995 Mar;15(6):1049-53 PMID: 7623661
  23. Characterization of the nisin gene cluster nisABTCIPR of Lactococcus lactis. Requirement of expression of the nisA and nisI genes for development of immunity.
    Eur J Biochem. 1993 Aug 15;216(1):281-91 PMID: 7689965
  24. Regulation of bacterial sugar-H+ symport by phosphoenolpyruvate-dependent enzyme I/HPr-mediated phosphorylation.
    Proc Natl Acad Sci U S A. 1995 Jan 31;92(3):778-82 PMID: 7846050
  25. Effect of the FruR regulator on transcription of the pts operon in Escherichia coli.
    J Biol Chem. 1995 Feb 10;270(6):2489-96 PMID: 7852310
  26. Regulation of 2-deoxyglucose phosphate accumulation in Lactococcus lactis vesicles by metabolite-activated, ATP-dependent phosphorylation of serine-46 in HPr of the phosphotransferase system.
    Microbiology. 1994 Dec;140 ( Pt 12):3421-9 PMID: 7881559
  27. Inhibition of the phosphoenolpyruvate:lactose phosphotransferase system and activation of a cytoplasmic sugar-phosphate phosphatase in Lactococcus lactis by ATP-dependent metabolite-activated phosphorylation of serine 46 in the phosphocarrier protein HPr.
    J Biol Chem. 1994 Apr 22;269(16):11837-44 PMID: 8163482
  28. Loss of protein kinase-catalyzed phosphorylation of HPr, a phosphocarrier protein of the phosphotransferase system, by mutation of the ptsH gene confers catabolite repression resistance to several catabolic genes of Bacillus subtilis.
    J Bacteriol. 1994 Jun;176(11):3336-44 PMID: 8195089
  29. Phosphoenolpyruvate:carbohydrate phosphotransferase systems of bacteria.
    Microbiol Rev. 1993 Sep;57(3):543-94 PMID: 8246840
  30. Phosphotransferase system of Streptococcus salivarius: characterization of the ptsH gene and its product.
    Gene. 1993 Dec 22;136(1-2):27-34 PMID: 8294015
  31. A system to generate chromosomal mutations in Lactococcus lactis which allows fast analysis of targeted genes.
    J Bacteriol. 1995 Dec;177(24):7011-8 PMID: 8522504
  32. Regulation of ptsH and ptsI gene expression in Streptococcus salivarius ATCC 25975.
    Mol Microbiol. 1995 Jun;16(6):1111-21 PMID: 8577247
  33. Specific recognition of the Bacillus subtilis gnt cis-acting catabolite-responsive element by a protein complex formed between CcpA and seryl-phosphorylated HPr.
    Mol Microbiol. 1995 Sep;17(5):953-60 PMID: 8596444
  34. Controlled gene expression systems for Lactococcus lactis with the food-grade inducer nisin.
    Appl Environ Microbiol. 1996 Oct;62(10):3662-7 PMID: 8837421
  35. Inducer expulsion and the occurrence of an HPr(Ser-P)-activated sugar-phosphate phosphatase in Enterococcus faecalis and Streptococcus pyogenes.
    Microbiology. 1996 Mar;142 ( Pt 3):585-92 PMID: 8868433
  36. Catabolite repression and inducer control in Gram-positive bacteria.
    Microbiology. 1996 Feb;142 ( Pt 2):217-30 PMID: 8932696
  37. Cooperative and non-cooperative DNA binding modes of catabolite control protein CcpA from Bacillus megaterium result from sensing two different signals.
    J Mol Biol. 1997 Mar 7;266(4):665-76 PMID: 9102460
  38. Cloning and sequencing of two enterococcal glpK genes and regulation of the encoded glycerol kinases by phosphoenolpyruvate-dependent, phosphotransferase system-catalyzed phosphorylation of a single histidyl residue.
    J Biol Chem. 1997 May 30;272(22):14166-74 PMID: 9162046
  39. The Bacillus subtilis crh gene encodes a HPr-like protein involved in carbon catabolite repression.
    Proc Natl Acad Sci U S A. 1997 Aug 5;94(16):8439-44 PMID: 9237995
  40. Binding of the catabolite repressor protein CcpA to its DNA target is regulated by phosphorylation of its corepressor HPr.
    J Biol Chem. 1997 Oct 17;272(42):26530-5 PMID: 9334231
  41. 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
  42. New protein kinase and protein phosphatase families mediate signal transduction in bacterial catabolite repression.
    Proc Natl Acad Sci U S A. 1998 Feb 17;95(4):1823-8 PMID: 9465101
  43. A novel protein kinase that controls carbon catabolite repression in bacteria.
    Mol Microbiol. 1998 Mar;27(6):1157-69 PMID: 9570401
  44. NADP, corepressor for the Bacillus catabolite control protein CcpA.
    Proc Natl Acad Sci U S A. 1998 Aug 4;95(16):9590-5 PMID: 9689125
Article Info
Journal
Journal of bacteriology
Abbr.
J Bacteriol
ISSN
0021-9193
Published
1999-02-00
Pages
764-71
Language
English
Region
United States
NLM ID
2985120R
PMCID
PMC93441
Subset
IM
Databases
GENBANK
Z97203
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