Home LiteratureArticle Details
PMID: 2203752 Published · ppublish English Journal Article Research Support, U.S. Gov't, P.H.S.

Physiological consequences of the complete loss of phosphoryl-transfer proteins HPr and FPr of the phosphoenolpyruvate:sugar phosphotransferase system and analysis of fructose (fru) operon expression in Salmonella typhimurium.

Journal of bacteriology ·Vol. 172 ·No. 9 ·1990-09-00 ·Pages 5459-69

Feldheim DA, Chin AM, Nierva CT, Feucht BU, Cao YW, Xu YF, Sutrina SL, Saier MH

Abstract

Mutants of Salmonella typhimurium defective in the proteins of the fructose operon [fruB(MH)KA], the fructose repressor (fruR), the energy-coupling enzymes of the phosphoenolpyruvate:sugar phosphotransferase system (PTS) (ptsH and ptsI), and the proteins of cyclic AMP action (cya and crp) were analyzed for their effects on cellular physiological processes and expression of the fructose operon. The fru operon consists of three structural genes: fruB(MH), which encodes the enzyme IIIFru-modulator-FPr tridomain fusion protein of the PTS; fruK, which encodes fructose-1-phosphate kinase; and fruA, which encodes enzyme IIFru of the PTS. Among the mutants analyzed were Tn10 insertion mutants and lacZ transcriptional fusion mutants. It was found that whereas a fruR::Tn10 insertion mutant, several fruB(MH)::Mu dJ and fruK::Mu dJ fusion mutants, and several ptsHI deletion mutants expressed the fru operon and beta-galactosidase at high constitutive levels, ptsH point mutants and fruA::Mu dJ fusion mutants retained inducibility. Inclusion of the wild-type fru operon in trans did not restore fructose-inducible beta-galactosidase expression in the fru::Mu dJ fusion mutants. cya and crp mutants exhibited reduced basal activities of all fru regulon enzymes, but inducibility was not impaired. Surprisingly, fruB::Mu dJ crp or cya double mutants showed over 10-fold inducibility of the depressed beta-galactosidase activity upon addition of fructose, even though this activity in the fruB::Mu dJ fusion mutants that contained the wild-type cya and crp alleles was only slightly inducible. By contrast, beta-galactosidase activity in a fruK::Mu dJ fusion mutant, which was similarly depressed by introduction of a crp or cya mutation, remained constitutive. Other experiments indicated that sugar uptake via the PTS can utilize either FPr-P or HPr-P as the phosphoryl donor, but that FPr is preferred for fructose uptake whereas HPr is preferred for uptake of the other sugars. Double mutants lacking both proteins were negative for the utilization of all sugar substrates of the PTS, were negative for the utilization of several gluconeogenic carbon sources, exhibited greatly reduced adenylate cyclase activity, and were largely nonmotile. These phenotypic properties are more extreme than those observed for tight ptsH and ptsI mutants, including mutants deleted for these genes. A biochemical explanation for this fact is proposed.

MeSH Terms
Bacterial Proteins/genetics Carrier Proteins/genetics,metabolism Fermentation Fructose/metabolism Gene Expression Regulation, Bacterial Genotype Glucose/metabolism Intracellular Signaling Peptides and Proteins Mutation Operon Phosphoenolpyruvate Sugar Phosphotransferase System/genetics,metabolism Salmonella typhimurium/enzymology,genetics,growth & development
Chemicals
Bacterial Proteins Carrier Proteins Intracellular Signaling Peptides and Proteins fructose-induced HPr-like protein, bacteria Fructose Phosphoenolpyruvate Sugar Phosphotransferase System phosphocarrier protein HPr Glucose
Authors & Affiliations
8 authors, click to expand affiliations / ORCID
Feldheim D A
Department of Biology, University of California, San Diego, La Jolla 92093.
Chin A M
Nierva C T
Feucht B U
Cao Y W
Xu Y F
Sutrina S L
Saier M H
References (50)
50 references, click to expand
  1. Fine control of adenylate cyclase by the phosphoenolpyruvate:sugar phosphotransferase systems in Escherichia coli and Salmonella typhimurium.
    J Bacteriol. 1980 Feb;141(2):603-10 PMID: 6245052
  2. The phosphoenolpyruvate-initiated pathway of fructose metabolism in Escherichia coli.
    J Biol Chem. 1968 Dec 25;243(24):6458-63 PMID: 4882209
  3. A new assay of the phosphotransferase system in Escherichia coli.
    Biochem Biophys Res Commun. 1969 Feb 21;34(4):382-7 PMID: 4887459
  4. The physiological behavior of enzyme I and heat-stable protein mutants of a bacterial phosphotransferase system.
    J Biol Chem. 1970 Nov 10;245(21):5870-3 PMID: 4919491
  5. Phosphoenolpyruvate-dependent fructose phosphorylation in photosynthetic bacteria.
    J Biol Chem. 1971 Dec 25;246(24):7819-21 PMID: 5002684
  6. Deletion mapping of the genes coding for HPr and enzyme I of the phosphoenolpyruvate: sugar phosphotransferase system in Salmonella typhimurium.
    J Bacteriol. 1972 Oct;112(1):17-29 PMID: 4562394
  7. Some improved methods in P22 transduction.
    Genetics. 1974 Apr;76(4):625-31 PMID: 4599954
  8. Coordinate regulation of adenylate cyclase and carbohydrate permeases by the phosphoenolpyruvate:sugar phosphotransferase system in Salmonella typhimurium.
    J Biol Chem. 1975 Sep 10;250(17):7078-80 PMID: 169265
  9. Sugar transport. Properties of mutant bacteria defective in proteins of the phosphoenolpyruvate: sugar phosphotransferase system.
    J Biol Chem. 1976 Nov 10;251(21):6584-97 PMID: 789368
  10. Sugar transport. The crr mutation: its effect on repression of enzyme synthesis.
    J Biol Chem. 1976 Nov 10;251(21):6598-605 PMID: 789369
  11. Regulation of genes coding for enzyme constituents of the bacterial phosphotransferase system.
    J Bacteriol. 1980 Feb;141(2):658-63 PMID: 6245053
  12. Carbohydrate transport in bacteria.
    Microbiol Rev. 1980 Sep;44(3):385-418 PMID: 6999324
  13. Evidence for the functional association of enzyme I and HPr of the phosphoenolpyruvate-sugar phosphotransferase system with the membrane in sealed vesicles of Escherichia coli.
    J Cell Biochem. 1982;18(2):231-8 PMID: 7040430
  14. Evidence for the evolutionary relatedness of the proteins of the bacterial phosphoenolpyruvate:sugar phosphotransferase system.
    J Cell Biochem. 1985;27(1):43-56 PMID: 3884637
  15. Regulation of cyclic AMP synthesis by enzyme IIIGlc of the phosphoenolpyruvate:sugar phosphotransferase system in crp strains of Salmonella typhimurium.
    J Bacteriol. 1985 Oct;164(1):477-8 PMID: 2995321
  16. The regulation of transcription initiation in bacteria.
    Annu Rev Genet. 1985;19:355-87 PMID: 3936407
  17. Relationship between pseudo-HPr and the PEP: fructose phosphotransferase system in Salmonella typhimurium and Escherichia coli.
    Mol Gen Genet. 1986 Jun;203(3):435-44 PMID: 3528748
  18. Cloning of genes from members of the family Enterobacteriaceae with mini-Mu bacteriophage containing plasmid replicons.
    J Bacteriol. 1987 Feb;169(2):687-93 PMID: 3542967
  19. Genetic expression of enzyme I activity of the phosphoenolpyruvate:sugar phosphotransferase system in ptsHI deletion strains of Salmonella typhimurium.
    J Bacteriol. 1987 Feb;169(2):894-6 PMID: 3542977
  20. Evidence for regulation of gluconeogenesis by the fructose phosphotransferase system in Salmonella typhimurium.
    J Bacteriol. 1987 Feb;169(2):897-9 PMID: 3542978
  21. Beta-glucoside (bgl) operon of Escherichia coli K-12: nucleotide sequence, genetic organization, and possible evolutionary relationship to regulatory components of two Bacillus subtilis genes.
    J Bacteriol. 1987 Jun;169(6):2579-90 PMID: 3034860
  22. A bacterial gene involved in transcription antitermination: regulation at a rho-independent terminator in the bgl operon of E. coli.
    Cell. 1987 Jul 31;50(3):485-94 PMID: 3301003
  23. Cloning and preliminary characterization of the sacS locus from Bacillus subtilis which controls the regulation of the exoenzyme levansucrase.
    Mol Gen Genet. 1987 Jun;208(1-2):114-20 PMID: 3039303
  24. Subversion of growth regulatory pathways in malignant transformation.
    Biochim Biophys Acta. 1987 Nov 25;907(3):219-44 PMID: 3314997
  25. Sugar transport by the bacterial phosphotransferase system. Molecular cloning and structural analysis of the Escherichia coli ptsH, ptsI, and crr genes.
    J Biol Chem. 1987 Nov 25;262(33):16241-53 PMID: 2960675
  26. Sugar permeases of the bacterial phosphoenolpyruvate-dependent phosphotransferase system: sequence comparisons.
    FASEB J. 1988 Mar 1;2(3):199-208 PMID: 2832233
  27. Properties of a Tn5 insertion mutant defective in the structural gene (fruA) of the fructose-specific phosphotransferase system of Rhodobacter capsulatus and cloning of the fru regulon.
    J Bacteriol. 1988 Apr;170(4):1698-703 PMID: 2832374
  28. Purification and characterization of the fructose-inducible HPr-like protein, FPr, and the fructose-specific enzyme III of the phosphoenolpyruvate: sugar phosphotransferase system of Salmonella typhimurium.
    J Biol Chem. 1988 Apr 15;263(11):5061-9 PMID: 3281935
  29. Transmitter and receiver modules in bacterial signaling proteins.
    Proc Natl Acad Sci U S A. 1988 Jul;85(14):4981-5 PMID: 3293046
  30. Transitory cis complementation: a method for providing transposition functions to defective transposons.
    Genetics. 1988 May;119(1):9-12 PMID: 2840333
  31. The ptsH, ptsI, and crr genes of the Escherichia coli phosphoenolpyruvate-dependent phosphotransferase system: a complex operon with several modes of transcription.
    J Bacteriol. 1988 Sep;170(9):3827-37 PMID: 2457575
  32. Regulation of the bgl operon of Escherichia coli by transcriptional antitermination.
    EMBO J. 1988 Oct;7(10):3271-7 PMID: 2846278
  33. Neutral amino acid transport systems in animal cells: potential targets of oncogene action and regulators of cellular growth.
    J Membr Biol. 1988 Aug;104(1):1-20 PMID: 3054116
  34. Sequence of cloned enzyme IIN-acetylglucosamine of the phosphoenolpyruvate:N-acetylglucosamine phosphotransferase system of Escherichia coli.
    Biochemistry. 1988 Aug 9;27(16):6054-61 PMID: 3056518
  35. Positive and negative regulators for glucitol (gut) operon expression in Escherichia coli.
    J Mol Biol. 1988 Oct 5;203(3):569-83 PMID: 3062173
  36. Escherichia coli promoters. I. Consensus as it relates to spacing class, specificity, repeat substructure, and three-dimensional organization.
    J Biol Chem. 1989 Apr 5;264(10):5522-30 PMID: 2647720
  37. Escherichia coli promoters. II. A spacing class-dependent promoter search protocol.
    J Biol Chem. 1989 Apr 5;264(10):5531-4 PMID: 2647721
  38. 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
  39. The PEP: fructose phosphotransferase system in Salmonella typhimurium: FPr combines enzyme IIIFru and pseudo-HPr activities.
    Mol Gen Genet. 1989 Apr;216(2-3):517-25 PMID: 2546043
  40. Nucleotide sequence of fruA, the gene specifying enzyme IIfru of the phosphoenolpyruvate-dependent sugar phosphotransferase system in Escherichia coli K12.
    J Gen Microbiol. 1988 Oct;134(10):2757-68 PMID: 3076173
  41. Sequence of the nagBACD operon in Escherichia coli K12 and pattern of transcription within the nag regulon.
    Mol Microbiol. 1989 Apr;3(4):505-15 PMID: 2668691
  42. Protein phosphorylation regulates transcription of the beta-glucoside utilization operon in E. coli.
    Cell. 1989 Sep 8;58(5):847-55 PMID: 2673534
  43. The repressor of the PEP:fructose phosphotransferase system is required for the transcription of the pps gene of Escherichia coli.
    Mol Gen Genet. 1989 Aug;218(2):348-52 PMID: 2674659
  44. Involvement of the bacterial phosphotransferase system in diverse mechanisms of transcriptional regulation.
    Res Microbiol. 1989 Jul-Aug;140(6):349-52 PMID: 2616889
  45. Fructose-specific phosphoenolpyruvate dependent phosphotransferase system of Escherichia coli: its alterations and adenylate cyclase activity.
    FEMS Microbiol Rev. 1989 Jun;5(1-2):125-33 PMID: 2699243
  46. Genetics of the phosphotransferase system of Bacillus subtilis.
    FEMS Microbiol Rev. 1989 Jun;5(1-2):175-82 PMID: 2517399
  47. Fructose transport by Escherichia coli.
    Philos Trans R Soc Lond B Biol Sci. 1990 Jan 30;326(1236):505-13 PMID: 1970653
  48. Structure and evolution of a multidomain multiphosphoryl transfer protein. Nucleotide sequence of the fruB(HI) gene in Rhodobacter capsulatus and comparisons with homologous genes from other organisms.
    J Mol Biol. 1990 Jun 20;213(4):687-703 PMID: 2193161
  49. Protein measurement with the Folin phenol reagent.
    J Biol Chem. 1951 Nov;193(1):265-75 PMID: 14907713
  50. Genetic regulatory mechanisms in the synthesis of proteins.
    J Mol Biol. 1961 Jun;3:318-56 PMID: 13718526
Article Info
Journal
Journal of bacteriology
Abbr.
J Bacteriol
ISSN
0021-9193
Published
1990-09-00
Pages
5459-69
Language
English
Region
United States
NLM ID
2985120R
PMCID
PMC213213
Subset
IM
Grants
NIAID NIH HHS · 2 RO1 AI 14176 · United States
NIAID NIH HHS · 5 RO1 AI 21702 · United States
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