Aspartate transcarbamylase from the hyperthermophilic archaeon Pyrococcus abyssi
暂无分享,去创建一个
[1] Bernard Labedan,et al. Using quaternary structures to assess the evolutionary history of proteins: the case of the aspartate carbamoyltransferase. , 2003, Molecular biology and evolution.
[2] Sung-Hou Kim,et al. Overexpression of archaeal proteins in Escherichia coli , 1998, Biotechnology Letters.
[3] Raymond Cunin,et al. Aspartate transcarbamylase from the hyperthermophilic archaeon Pyrococcus abyssi: thermostability and 1.8A resolution crystal structure of the catalytic subunit complexed with the bisubstrate analogue N-phosphonacetyl-L-aspartate. , 2003, Journal of molecular biology.
[4] N. Glansdorff,et al. Was our ancestor a hyperthermophilic procaryote? , 2002, Comparative biochemistry and physiology. Part A, Molecular & integrative physiology.
[5] Nicolas Glansdorff,et al. Metabolic Channeling of Carbamoyl Phosphate, a Thermolabile Intermediate , 2002, The Journal of Biological Chemistry.
[6] An Aspartate Transcarbamylase Lacking Catalytic Subunit Interactions , 2002 .
[7] G. Braus,et al. Allosteric Regulation of Catalytic Activity:Escherichia coli Aspartate Transcarbamoylase versus Yeast Chorismate Mutase , 2001, Microbiology and Molecular Biology Reviews.
[8] L. Fetler,et al. The allosteric activator Mg-ATP modifies the quaternary structure of the R-state of Escherichia coli aspartate transcarbamylase without altering the T<-->R equilibrium. , 2001, Journal of molecular biology.
[9] D. King,et al. Random circular permutation leading to chain disruption within and near α helices in the catalytic chains of aspartate transcarbamoylase: Effects on assembly, stability, and function , 2001, Protein science : a publication of the Protein Society.
[10] H. K. Schachman,et al. In vivo assembly of aspartate transcarbamoylase from fragmented and circularly permuted catalytic polypeptide chains , 2001, Protein Science.
[11] C. Purcarea. Aspartate transcarbamoylase from Pyrococcus abyssi. , 2001, Methods in enzymology.
[12] J. Wild,et al. Intramolecular signal transmission in enterobacterial aspartate transcarbamylases II. Engineering co-operativity and allosteric regulation in the aspartate transcarbamylase of Erwinia herbicola. , 1999, Journal of molecular biology.
[13] W. Lipscomb,et al. Insights into the mechanisms of catalysis and heterotropic regulation of Escherichia coli aspartate transcarbamoylase based upon a structure of the enzyme complexed with the bisubstrate analogue N‐phosphonacetyl‐L‐aspartate at 2.1 Å , 1999, Proteins.
[14] N. Glansdorff,et al. The Evolutionary History of Carbamoyltransferases: A Complex Set of Paralogous Genes Was Already Present in the Last Universal Common Ancestor , 1999, Journal of Molecular Evolution.
[15] N. Glansdorff,et al. Aspartate carbamoyltransferase from the thermoacidophilic archaeon Sulfolobus acidocaldarius. Cloning, sequence analysis, enzyme purification and characterization. , 1999, European journal of biochemistry.
[16] C. Purcarea,et al. Channeling of Carbamoyl Phosphate to the Pyrimidine and Arginine Biosynthetic Pathways in the Deep Sea Hyperthermophilic Archaeon Pyrococcus abyssi* , 1999, The Journal of Biological Chemistry.
[17] E. Kantrowitz,et al. The influence of the regulatory chain amino acids Glu-62 and IIe-12 on the heterotropic properties of Escherichia coli aspartate transcarbamoylase. , 1998, Biochemistry.
[18] E. Kantrowitz,et al. The N-terminus of the regulatory chain of Escherichia coli aspartate transcarbamoylase is important for both nucleotide binding and heterotropic effects. , 1998, Biochemistry.
[19] R. Cunin,et al. Aspartate transcarbamylase from the deep-sea hyperthermophilic archaeon Pyrococcus abyssi: genetic organization, structure, and expression in Escherichia coli , 1997, Journal of bacteriology.
[20] J. Wild,et al. Conversion of the allosteric regulatory patterns of aspartate transcarbamoylase by exchange of a single beta-strand between diverged regulatory chains. , 1997, Biochemistry.
[21] L. Fetler,et al. Unlike the quaternary structure transition, the tertiary structure change of the 240s loop in allosteric aspartate transcarbamylase requires active site saturation by substrate for completion. , 1995, Biochemistry.
[22] C. Pace,et al. How to measure and predict the molar absorption coefficient of a protein , 1995, Protein science : a publication of the Protein Society.
[23] L. Fetler,et al. X-ray scattering titration of the quaternary structure transition of aspartate transcarbamylase with a bisubstrate analogue: influence of nucleotide effectors. , 1995, Journal of molecular biology.
[24] N. Glansdorff,et al. Ammonia-dependent synthesis and metabolic channelling of carbamoyl phosphate in the hyperthermophilic archaeon Pyrococcus furiosus. , 1995, Microbiology.
[25] F. Van Vliet,et al. Intramolecular transmission of the ATP regulatory signal in Escherichia coli aspartate transcarbamylase: specific involvement of a clustered set of amino acid interactions at an interface between regulatory and catalytic subunits. , 1995, Journal of molecular biology.
[26] G. Erauso,et al. The catalytic and regulatory properties of aspartate transcarbamoylase from Pyrococcus abyssi, a new deep-sea hyperthermophilic archaeobacterium , 1994 .
[27] P. Tauc,et al. Apparent cooperativity for carbamoylphosphate in Escherichia coli aspartate transcarbamoylase only reflects cooperativity for aspartate. , 1994, European journal of biochemistry.
[28] W. Lipscomb. Aspartate transcarbamylase from Escherichia coli: activity and regulation. , 1994, Advances in enzymology and related areas of molecular biology.
[29] G. Hervé,et al. Synergistic inhibition of Escherichia coli aspartate transcarbamylase by CTP and UTP: binding studies using continuous-flow dialysis. , 1992, Biochemistry.
[30] R. Stevens,et al. A molecular mechanism for pyrimidine and purine nucleotide control of aspartate transcarbamoylase. , 1992, Proceedings of the National Academy of Sciences of the United States of America.
[31] W. Stafford,et al. Boundary analysis in sedimentation transport experiments: a procedure for obtaining sedimentation coefficient distributions using the time derivative of the concentration profile. , 1992, Analytical biochemistry.
[32] J. Cherfils,et al. Heterotropic interactions in aspartate transcarbamoylase: turning allosteric ATP activation into inhibition as a consequence of a single tyrosine to phenylalanine mutation. , 1991, Proceedings of the National Academy of Sciences of the United States of America.
[33] S. Shire,et al. Self-association of human and porcine relaxin as assessed by analytical ultracentrifugation and circular dichroism. , 1991, Biochemistry.
[34] N. Glansdorff,et al. Heterotropic interactions in Escherichia coli aspartate transcarbamylase. Subunit interfaces involved in CTP inhibition and ATP activation. , 1991, Journal of molecular biology.
[35] L. A. Holladay,et al. A comparative study of the unfolding thermodynamics of vertebrate metmyoglobins. , 1990, Biochemistry.
[36] J. Wild,et al. Molecular evolution and genetic engineering of protein domains involving aspartate transcarbamoylase. , 1990, Annual review of microbiology.
[37] J. Wild,et al. In the presence of CTP, UTP becomes an allosteric inhibitor of aspartate transcarbamoylase. , 1989, Proceedings of the National Academy of Sciences of the United States of America.
[38] W. Lipscomb,et al. Escherichia coli aspartate transcarbamylase: the relation between structure and function. , 1988, Science.
[39] D. Purich,et al. Practical considerations in the design of initial velocity enzyme rate assays. , 1979, Methods in enzymology.
[40] H. K. Schachman,et al. Allosteric regulation of aspartate transcarbamoylase. Changes in the sedimentation coefficient promoted by the bisubstrate analogue N-(phosphonacetyl)-L-aspartate. , 1977, Biochemistry.
[41] G. Hervé,et al. An aspartate transcarbamylase lacking catalytic subunit interactions. Study of conformational changes by ultraviolet absorbance and circular dichroism spectroscopy. , 1977, Journal of Biological Chemistry.
[42] G. Stark,et al. Aspartate transcarbamylase. A study of possible roles for the sulfhydryl group at the active site. , 1973, Journal of Biological Chemistry.
[43] G. Hammes,et al. An equilibrium binding study of the interaction of aspartate transcarbamylase with cytidine 5'-triphosphate and adenosine 5'-triphosphate. , 1973, Biochemistry.
[44] G. Stark,et al. Aspartate transcarbamylase. Interaction with the transition state analogue N-(phosphonacetyl)-L-aspartate. , 1971, The Journal of biological chemistry.
[45] M. E. Jones,et al. Modified methods for the determination of carbamyl aspartate. , 1969, Analytical biochemistry.
[46] M. E. Jones,et al. Molecular size and feedback-regulation characteristics of bacterial asartate transcarbamulases. , 1969, Archives of biochemistry and biophysics.
[47] R. W. Porter,et al. Aspartate transcarbamylase. Kinetic studies of the catalytic subunit. , 1969, The Journal of biological chemistry.
[48] J. Gerhart,et al. Allosteric interactions in aspartate transcarbamylase. II. Evidence for different conformational states of the protein in the presence and absence of specific ligands. , 1968, Biochemistry.
[49] N. Glansdorff. TOPOGRAPHY OF COTRANSDUCIBLE ARGININE MUTATIONS IN ESCHERICHIA COLI K-12. , 1965, Genetics.
[50] J. L. Webb. General principles of inhibition , 1963 .
[51] A. Pardee,et al. [124b] Aspartate transcarbamylase from Escherichia coli: Aspartate + carbamyl phosphate → Carbamyl aspartate + Pi + H+ , 1962 .