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1.
J Biol Chem ; 281(26): 17579-87, 2006 Jun 30.
Article in English | MEDLINE | ID: mdl-16547354

ABSTRACT

The bacterial phosphoenolpyruvate (PEP):glycose phosphotransferase system (PTS) mediates uptake/phosphorylation of sugars. The transport of all PTS sugars requires Enzyme I (EI) and a phosphocarrier histidine protein of the PTS (HPr). The PTS is stringently regulated, and a potential mechanism is the monomer/dimer transition of EI, because only the dimer accepts the phosphoryl group from PEP. EI monomer consists of two major domains, at the N and C termini (EI-N and EI-C, respectively). EI-N accepts the phosphoryl group from phospho-HPr but not PEP. However, it is phosphorylated by PEP(Mg(2+)) when complemented with EI-C. Here we report that the phosphotransfer rate increases approximately 25-fold when HPr is added to a mixture of EI-N, EI-C, and PEP(Mg(2+)). A model to explain this effect is offered. Sedimentation equilibrium results show that the association constant for dimerization of EI-C monomers is 260-fold greater than the K(a) for native EI. The ligands have no detectable effect on the secondary structure of the dimer (far UV CD) but have profound effects on the tertiary structure as determined by near UV CD spectroscopy, thermal denaturation, sedimentation equilibrium and velocity, and intrinsic fluorescence of the 2 Trp residues. The binding of PEP requires Mg(2+). For example, there is no effect of PEP on the T(m), an increase of 7 degrees C in the presence of Mg(2+), and approximately 14 degrees C when both are present. Interestingly, the dissociation constants for each of the ligands from EI-C are approximately the same as the kinetic (K(m)) constants for the ligands in the complete PTS sugar phosphorylation assays.


Subject(s)
Escherichia coli/enzymology , Phosphoenolpyruvate Sugar Phosphotransferase System/chemistry , Phosphoenolpyruvate Sugar Phosphotransferase System/metabolism , Phosphotransferases (Nitrogenous Group Acceptor)/chemistry , Phosphotransferases (Nitrogenous Group Acceptor)/metabolism , Enzyme Activation/physiology , Kinetics , Ligands , Magnesium/metabolism , Phosphoenolpyruvate/metabolism , Phosphorylation , Protein Folding , Protein Structure, Tertiary , Spectrometry, Fluorescence , Temperature
2.
J Biol Chem ; 281(26): 17570-8, 2006 Jun 30.
Article in English | MEDLINE | ID: mdl-16547355

ABSTRACT

Enzyme I (EI) is the first protein in the phosphotransfer sequence of the bacterial phosphoenolpyruvate:glycose phosphotransferase system. This system catalyzes sugar phosphorylation/transport and is stringently regulated. Since EI homodimer accepts the phosphoryl group from phosphoenolpyruvate (PEP), whereas the monomer does not, EI may be a major factor in controlling sugar uptake. Previous work from this and other laboratories (e.g. Dimitrova, M. N., Szczepanowski, R. H., Ruvinov, S. B., Peterkofsky, A., and Ginsburg A. (2002) Biochem. 41, 906-913), indicate that K(a) is sensitive to several parameters. We report here a systematic study of K(a) determined by sedimentation equilibrium, which showed that it varied by 1000-fold, responding to virtually every parameter tested, including temperature, phosphorylation, pH (6.5 versus 7.5), ionic strength, and especially the ligands Mg(2+) and PEP. This variability may be required for a regulatory protein. Further insight was gained by analyzing EI by sedimentation velocity, by near UV CD spectroscopy, and with a nonphosphorylatable active site mutant, EI-H189Q, which behaved virtually identically to EI. The singular properties of EI are explained by a model consistent with the results reported here and in the accompanying paper (Patel, H. V., Vyas, K. A., Mattoo, R. L., Southworth, M., Perler, F. B., Comb, D., and Roseman, S. (2006) J. Biol. Chem. 281, 17579-17587). We suggest that EI and EI-H189Q each comprise a multiplicity of conformers and progressively fewer conformers as they dimerize and bind Mg(2+) and finally PEP. Mg(2+) alone induces small or no detectable changes in structure, but large conformational changes ensue with Mg(2+)/PEP. This effect is explained by a "swiveling mechanism" (similar to that suggested for pyruvate phosphate dikinase (Herzberg, O., Chen, C. C., Kapadia, G., McGuire, M., Carroll, L. J., Noh, S. J., and Dunaway-Mariano, D. (1996) Proc. Natl. Acad. Sci. U. S. A. 93, 2652-2657)), which brings the C-terminal domain with the two bound ligands close to the active site His(189).


Subject(s)
Escherichia coli/enzymology , Phosphoenolpyruvate Sugar Phosphotransferase System/chemistry , Phosphoenolpyruvate Sugar Phosphotransferase System/metabolism , Phosphotransferases (Nitrogenous Group Acceptor)/chemistry , Phosphotransferases (Nitrogenous Group Acceptor)/metabolism , Binding Sites/physiology , Dimerization , Enzyme Activation/physiology , Hydrogen-Ion Concentration , Ligands , Magnesium/metabolism , Mutagenesis , Phosphoenolpyruvate/metabolism , Phosphoenolpyruvate Sugar Phosphotransferase System/genetics , Phosphorylation , Phosphotransferases (Nitrogenous Group Acceptor)/genetics , Protein Structure, Tertiary , Substrate Specificity , Temperature
3.
Proc Natl Acad Sci U S A ; 101(50): 17486-91, 2004 Dec 14.
Article in English | MEDLINE | ID: mdl-15557553

ABSTRACT

The phosphoenolpyruvate:glycose phosphotransferase system (PTS) participates in important functions in the bacterial cell, including the phosphorylation/uptake of PTS sugars. Enzyme I (EI), the first protein of the PTS complex, accepts the phosphoryl group from phosphoenolpyruvate, which is then transferred through a chain of proteins to the sugar. In these studies, a mutant GFP, enhanced yellow fluorescent protein (YFP), was linked to the N terminus of EI, giving Y-EI. Y-EI was active both in vitro (>/=90% compared with EI) and in vivo. Unexpectedly, the subcellular distribution of Y-EI varied significantly. Three types of fluorescence were observed: (i) diffuse (dispersed throughout the cell), (ii) punctate (concentrated in numerous discrete spots throughout the cell), and (iii) polar (at one or both ends of the cell). Cells from dense colonies grown on agar plates with LB broth or synthetic (Neidhardt) medium showed primarily bipolar or punctate fluorescence. In liquid culture, under carefully defined carbon-limiting growth conditions [ribose (non-PTS), mannitol (PTS sugar), or dl-lactate], cellular levels of enzymatically active Y-EI remain essentially constant for each carbon source, but fluorescence distribution depends on C source, cell density, growth phase, and apparently on "conditioned medium." Fluorescence was diffuse during exponential growth on LB or ribose/Neidhardt medium. On ribose they became punctate in the stationary phase, reverting to diffuse when more ribose was added. In LB, both Y-EI and a nonphosphorylatable mutant, H189Q-Y-EI, showed a diffuse fluorescence during growth, but, shortly after the addition of isopropyl beta-d-thiogalactopyranoside, Y-EI became bipolar; H189Q-Y-EI did not. The functions of EI sequestration remain to be determined.


Subject(s)
Escherichia coli/cytology , Escherichia coli/enzymology , Phosphoenolpyruvate Sugar Phosphotransferase System/chemistry , Phosphoenolpyruvate Sugar Phosphotransferase System/metabolism , Cell Count , Cell Proliferation/drug effects , Culture Media/chemistry , Culture Media/pharmacology , Culture Media, Conditioned/pharmacology , Escherichia coli/genetics , Escherichia coli/growth & development , Genes, Reporter/genetics , Isopropyl Thiogalactoside/pharmacology , Microscopy, Fluorescence , Phosphoenolpyruvate Sugar Phosphotransferase System/genetics , Protein Transport/drug effects , Ribose/pharmacology , Time Factors
4.
Proc Natl Acad Sci U S A ; 99(12): 8412-7, 2002 Jun 11.
Article in English | MEDLINE | ID: mdl-12060784

ABSTRACT

Myelin-associated glycoprotein (MAG) binds to the nerve cell surface and inhibits nerve regeneration. The nerve cell surface ligand(s) for MAG are not established, although sialic acid-bearing glycans have been implicated. We identify the nerve cell surface gangliosides GD1a and GT1b as specific functional ligands for MAG-mediated inhibition of neurite outgrowth from primary rat cerebellar granule neurons. MAG-mediated neurite outgrowth inhibition is attenuated by (i) neuraminidase treatment of the neurons; (ii) blocking neuronal ganglioside biosynthesis; (iii) genetically modifying the terminal structures of nerve cell surface gangliosides; and (iv) adding highly specific IgG-class antiganglioside mAbs. Furthermore, neurite outgrowth inhibition is mimicked by highly multivalent clustering of GD1a or GT1b by using precomplexed antiganglioside Abs. These data implicate the nerve cell surface gangliosides GD1a and GT1b as functional MAG ligands and suggest that the first step in MAG inhibition is multivalent ganglioside clustering.


Subject(s)
Gangliosides/physiology , Myelin-Associated Glycoprotein/physiology , Nerve Regeneration/physiology , Neurites/physiology , Animals , Antibodies, Monoclonal/pharmacology , CHO Cells , Cricetinae , Gangliosides/biosynthesis , Gangliosides/immunology , Glycosphingolipids/metabolism , Ligands , Nerve Regeneration/drug effects , Neurites/ultrastructure , Rats
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