Understanding Glucose Transport by the Bacterial Phosphoenolpyruvate:Glycose Phosphotransferase System on the Basis of Kinetic Measurements in Vitro *
暂无分享,去创建一个
[1] G. Briggs,et al. A Note on the Kinetics of Enzyme Action. , 1925, The Biochemical journal.
[2] A. K. Solomon,et al. Cation Transport in Escherichia coli , 1966, The Journal of general physiology.
[3] H. Winkler,et al. The role of energy coupling in the transport of beta-galactosides by Escherichia coli. , 1966, The Journal of biological chemistry.
[4] E. Lin,et al. Glycerol Kinase, the Pacemaker for the Dissimilation of Glycerol in Escherichia coli , 1970, Journal of bacteriology.
[5] O. H. Lowry,et al. The effect of carbon and nitrogen sources on the level of metabolic intermediates in Escherichia coli. , 1971, The Journal of biological chemistry.
[6] Reinhart Heinrich,et al. A linear steady-state treatment of enzymatic chains. General properties, control and effector strength. , 1974, European journal of biochemistry.
[7] Galactose transport in Salmonella typhimurium , 1977, Journal of bacteriology.
[8] S. Roseman,et al. Modified assay procedures for the phosphotransferase system in enteric bacteria. , 1979, Analytical biochemistry.
[9] T. Steeves,et al. Enzyme I of the phosphoenolpyruvate: sugar phosphotransferase system of Escherichia coli. Purification to homogeneity and some properties. , 1980, Canadian journal of biochemistry.
[10] G. Robillard,et al. Escherichia coli phosphoenolpyruvate-dependent phosphotransferase system. Evidence that the dimer is the active form of enzyme I. , 1980, Biochemistry.
[11] M. Saier,et al. Phosphoryl exchange reaction catalyzed by enzyme I of the bacterial phosphoenolpyruvate: sugar phosphotransferase system. Kinetic characterization. , 1980, The Journal of biological chemistry.
[12] K. Izui,et al. Regulation of Escherichia coli phosphoenolpyruvate carboxylase by multiple effectors in vivo. Estimation of the activities in the cells grown on various compounds. , 1980, Journal of biochemistry.
[13] P. Postma,et al. Isolation of IIIGlc of the phosphoenolpyruvate-dependent glucose phosphotransferase system of Salmonella typhimurium , 1981, Journal of bacteriology.
[14] K. Izui,et al. Stringent control of intermediary metabolism in Escherichia coli: pyruvate excretion by cells grown on succinate. , 1981, Journal of biochemistry.
[15] S. Roseman,et al. Sugar transport by the bacterial phosphotransferase system. The glucose receptors of the Salmonella typhimurium phosphotransferase system. , 1982, The Journal of biological chemistry.
[16] S. Roseman,et al. Sugar transport by the bacterial phosphotransferase system. Isolation and characterization of a glucose-specific phosphocarrier protein (IIIGlc) from Salmonella typhimurium. , 1982, The Journal of biological chemistry.
[17] S. Roseman,et al. Sugar transport by the bacterial phosphotransferase system. Isolation and characterization of a phosphocarrier protein HPr from wild type and mutants of Salmonella typhimurium. , 1982, The Journal of biological chemistry.
[18] S. Roseman,et al. Sugar transport by the bacterial phosphotransferase system. Phosphoryl transfer reactions catalyzed by enzyme I of Salmonella typhimurium. , 1982, The Journal of biological chemistry.
[19] G. Robillard,et al. Escherichia coli phosphoenolpyruvate-dependent phosphotransferase system: role of divalent metals in the dimerization and phosphorylation of enzyme I. , 1982, Biochemistry.
[20] S. Roseman,et al. Sugar transport by the bacterial phosphotransferase system. Isolation and characterization of enzyme I from Salmonella typhimurium. , 1982, The Journal of biological chemistry.
[21] S. Roseman,et al. Sugar transport by the bacterial phosphotransferase system. Preparation of a fluorescein derivative of the glucose-specific phosphocarrier protein IIIGlc and its binding to the phosphocarrier protein HPr. , 1983, The Journal of biological chemistry.
[22] E. Waygood,et al. Determination of the levels of HPr and enzyme I of the phosphoenolpyruvate-sugar phosphotransferase system in Escherichia coli and Salmonella typhimurium. , 1983, Canadian journal of biochemistry and cell biology = Revue canadienne de biochimie et biologie cellulaire.
[23] P. Postma,et al. Bacterial phosphoenolpyruvate-dependent phosphotransferase system. Mechanism of the transmembrane sugar translocation and phosphorylation. , 1983, Biochemistry.
[24] Subunit association of enzyme I of the Salmonella typhimurium phosphoenolpyruvate: glycose phosphotransferase system. Temperature dependence and thermodynamic properties. , 1984, The Journal of biological chemistry.
[25] E. Waygood,et al. The bacterial phosphotransferase system: Kinetic characterization of the glucose, mannitol, glucitol, and N‐acetylglucosamine systems , 1986, Journal of cellular biochemistry.
[26] B. Erni. Glucose-specific permease of the bacterial phosphotransferase system: phosphorylation and oligomeric structure of the glucose-specific IIGlc-IIIGlc complex of Salmonella typhimurium. , 1986, Biochemistry.
[27] E. Waygood,et al. Characterization of mutant histidine-containing proteins of the phosphoenolpyruvate:sugar phosphotransferase system of Escherichia coli and Salmonella typhimurium , 1987, Journal of bacteriology.
[28] S. Roseman,et al. II-BGlc, a glucose receptor of the bacterial phosphotransferase system: molecular cloning of ptsG and purification of the receptor from an overproducing strain of Escherichia coli. , 1987, Proceedings of the National Academy of Sciences of the United States of America.
[29] T. Doering,et al. Sugar transport by the bacterial phosphotransferase system. Molecular cloning and structural analysis of the Escherichia coli ptsH, ptsI, and crr genes. , 1987, The Journal of biological chemistry.
[30] G. Robillard,et al. Enzymes II of the phosphoenolpyruvate-dependent sugar transport systems: a review of their structure and mechanism of sugar transport. , 1988, Biochimica et biophysica acta.
[31] P. Postma,et al. Suppression of IIIGlc‐defects by Enzymes IINag and IIBgl of the PEP:carbohydrate phosphotransferase system , 1988, Molecular microbiology.
[32] D. Koshland,et al. Transmembrane signaling by a chimera of the Escherichia coli aspartate receptor and the human insulin receptor. , 1989, Proceedings of the National Academy of Sciences of the United States of America.
[33] M. Saier. Protein phosphorylation and allosteric control of inducer exclusion and catabolite repression by the bacterial phosphoenolpyruvate: sugar phosphotransferase system. , 1989, Microbiological reviews.
[34] Sugar transport by the bacterial phosphotransferase system. Fluorescence studies of subunit interactions of enzyme I. , 1990, The Journal of biological chemistry.
[35] S. Roseman,et al. The bacterial phosphoenolpyruvate: glycose phosphotransferase system. , 1990, Annual review of biochemistry.
[36] S. Roseman,et al. Sugar transport by the bacterial phosphotransferase system. Structural and thermodynamic domains of enzyme I of Salmonella typhimurium. , 1991, The Journal of biological chemistry.
[37] S. Zimmerman,et al. Estimation of macromolecule concentrations and excluded volume effects for the cytoplasm of Escherichia coli. , 1991, Journal of molecular biology.
[38] P. Postma,et al. Control of glucose metabolism by enzyme IIGlc of the phosphoenolpyruvate-dependent phosphotransferase system in Escherichia coli , 1991, Journal of bacteriology.
[39] R. Klevit,et al. Involvement of the carboxy-terminal residue in the active site of the histidine-containing protein, HPr, of the phosphoenolpyruvate:sugar phosphotransferase system of Escherichia coli. , 1991, Biochemistry.
[40] P. Postma,et al. Analysis of mutations that uncouple transport from phosphorylation in enzyme IIGlc of the Escherichia coli phosphoenolpyruvate-dependent phosphotransferase system , 1992, Journal of bacteriology.
[41] S. Schuster,et al. The definitions of metabolic control analysis revisited. , 1992, Bio Systems.
[42] M. Saier,et al. Functional interactions between proteins of the phosphoenolpyruvate:sugar phosphotransferase systems of Bacillus subtilis and Escherichia coli. , 1992, The Journal of biological chemistry.
[43] B. Erni,et al. The glucose transporter of Escherichia coli , 1993, FEBS letters.
[44] B. Kholodenko,et al. The sum of the control coefficients of all enzymes on the flux through a group-transfer pathway can be as high as two. , 1993, European journal of biochemistry.
[45] H M Sauro,et al. SCAMP: a general-purpose simulator and metabolic control analysis program , 1993, Comput. Appl. Biosci..
[46] A. Minton,et al. Macromolecular crowding: biochemical, biophysical, and physiological consequences. , 1993, Annual review of biophysics and biomolecular structure.
[47] Tatsuya Maeda,et al. A two-component system that regulates an osmosensing MAP kinase cascade in yeast , 1994, Nature.
[48] J. Lengeler,et al. Enzymes II of the phospho enol pyruvate-dependent phosphotransferase systems: their structure and function in carbohydrate transport. , 1994, Biochimica et biophysica acta.
[49] M. Burg,et al. Macromolecular crowding and confinement in cells exposed to hypertonicity. , 1994, The American journal of physiology.
[50] S. Roseman,et al. Cation-promoted association of a regulatory and target protein is controlled by protein phosphorylation. , 1994, Proceedings of the National Academy of Sciences of the United States of America.
[51] S. Roseman,et al. Sugar transport by the bacterial phosphotransferase system. Characterization of the Escherichia coli enzyme I monomer/dimer transition kinetics by fluorescence anisotropy. , 1994, The Journal of biological chemistry.
[52] S. Schuster,et al. Defining control coefficients in non-ideal metabolic pathways. , 1995, Biophysical chemistry.
[53] H V Westerhoff,et al. UvA-DARE ( Digital Academic Repository ) Signal transduction in bacteria : phospho-neural network ( s ) in Escherichia coli ? , 2003 .
[54] B. Kholodenko,et al. The macroworld versus the microworld of biochemical regulation and control. , 1995, Trends in biochemical sciences.
[55] B. Kholodenko,et al. CONTROL THEORY OF GROUP TRANSFER PATHWAYS , 1995 .
[56] Friction analysis of kinetic schemes: the friction coefficient. , 1995, Biochimica et biophysica acta.
[57] P. Postma,et al. Control of glucose metabolism by the enzymes of the glucose phosphotransferase system in Salmonella typhimurium. , 1995, European journal of biochemistry.
[58] N D Meadow,et al. Rate and Equilibrium Constants for Phosphoryltransfer between Active Site Histidines of Escherichia coli HPr and the Signal Transducing Protein IIIGlc* , 1996, The Journal of Biological Chemistry.
[59] Boris N. Kholodenko,et al. Biothermokinetics of the living cell , 1996 .
[61] H. Westerhoff,et al. Limits to inducer exclusion: inhibition of the bacterial phosphotransferase system by glycerol kinase , 1998, Molecular microbiology.
[62] H. Takahashi,et al. Inducer exclusion in Escherichia coli by non‐PTS substrates: the role of the PEP to pyruvate ratio in determining the phosphorylation state of enzyme IIAGlc , 1998, Molecular microbiology.
[63] B. Kholodenko,et al. Implications of macromolecular crowding for signal transduction and metabolite channeling. , 1998, Proceedings of the National Academy of Sciences of the United States of America.
[64] J. Plumbridge,et al. Expression of the phosphotransferase system both mediates and is mediated by Mlc regulation in Escherichia coli , 1999, Molecular microbiology.
[65] Ann M Stock,et al. Two-component signal transduction. , 2000, Annual review of biochemistry.