Src kinases: a hub for NMDA receptor regulation
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[1] J. T. Hackett,et al. Regulation of the Neuronal Nicotinic Acetylcholine Receptor by Src Family Tyrosine Kinases* , 2004, Journal of Biological Chemistry.
[2] S. Grant,et al. Identification of PSD-93 as a Substrate for the Src Family Tyrosine Kinase Fyn* , 2003, Journal of Biological Chemistry.
[3] M. Salter,et al. Interactions between Src family protein tyrosine kinases and PSD-95 , 2003, Neuropharmacology.
[4] C L Galli,et al. Interleukin-1β Enhances NMDA Receptor-Mediated Intracellular Calcium Increase through Activation of the Src Family of Kinases , 2003, The Journal of Neuroscience.
[5] L. Teves,et al. Inhibition of protein kinase C reduces ischemia‐induced tyrosine phosphorylation of the N‐methyl‐d‐aspartate receptor , 2003, Journal of neurochemistry.
[6] C. Parsons,et al. Expression of Polyglutamine-expanded Huntingtin Induces Tyrosine Phosphorylation of N-Methyl-D-aspartate Receptors* , 2003, Journal of Biological Chemistry.
[7] O. Arancio,et al. Receptor protein tyrosine phosphatase α is essential for hippocampal neuronal migration and long‐term potentiation , 2003 .
[8] J. Roder,et al. Co-stimulation of mGluR5 and N-Methyl-D-aspartate Receptors Is Required for Potentiation of Excitatory Synaptic Transmission in Hippocampal Neurons* , 2003, Journal of Biological Chemistry.
[9] C. Thornton,et al. H-Ras Modulates N-Methyl-D-aspartate Receptor Function via Inhibition of Src Tyrosine Kinase Activity* , 2003, Journal of Biological Chemistry.
[10] G. Lynch,et al. Integrins regulate NMDA receptor-mediated synaptic currents. , 2003, Journal of neurophysiology.
[11] S. McMahon,et al. EphB receptors and ephrin-B ligands regulate spinal sensory connectivity and modulate pain processing , 2003, Nature Neuroscience.
[12] D. Ron,et al. Pituitary Adenylate Cyclase-activating Polypeptide (PACAP(1–38)) Enhances N-Methyl-d-aspartate Receptor Function and Brain-derived Neurotrophic Factor Expression via RACK1* , 2003, The Journal of Biological Chemistry.
[13] D. Chuang,et al. Lithium‐induced inhibition of Src tyrosine kinase in rat cerebral cortical neurons: a role in neuroprotection against N‐methyl‐D‐aspartate receptor‐mediated excitotoxicity , 2003, FEBS letters.
[14] U. Gerber,et al. Two Distinct Signaling Pathways Upregulate NMDA Receptor Responses via Two Distinct Metabotropic Glutamate Receptor Subtypes , 2002, The Journal of Neuroscience.
[15] Ting-Fang Wang,et al. pp60 c-src Is a Negative Regulator of Laminin-1-Mediated Neurite Outgrowth in Chick Sensory Neurons , 2002, Molecular and Cellular Neuroscience.
[16] W. Guo,et al. Tyrosine Phosphorylation of the NR2B Subunit of the NMDA Receptor in the Spinal Cord during the Development and Maintenance of Inflammatory Hyperalgesia , 2002, The Journal of Neuroscience.
[17] M. Behrens,et al. Metabotropic Glutamate Receptor 1-Induced Upregulation of NMDA Receptor Current: Mediation through the Pyk2/Src-Family Kinase Pathway in Cortical Neurons , 2002, The Journal of Neuroscience.
[18] C. L. Kwan,et al. Gain control of N‐methyl‐D‐aspartate receptor activity by receptor‐like protein tyrosine phosphatase α , 2002, The EMBO journal.
[19] A. Bonci,et al. NMDA receptor function is regulated by the inhibitory scaffolding protein, RACK1 , 2002, Proceedings of the National Academy of Sciences of the United States of America.
[20] Rand Askalan,et al. Tyrosine Phosphatase STEP Is a Tonic Brake on Induction of Long-Term Potentiation , 2002, Neuron.
[21] A. Irving,et al. Leptin Enhances NMDA Receptor Function and Modulates Hippocampal Synaptic Plasticity , 2001, The Journal of Neuroscience.
[22] N. Milgram,et al. Seizure activity results in increased tyrosine phosphorylation of the N-methyl-D-aspartate receptor in the hippocampus. , 2001, Brain research. Molecular brain research.
[23] M. Baudry,et al. Tyrosine phosphorylation of ionotropic glutamate receptors by Fyn or Src differentially modulates their susceptibility to calpain and enhances their binding to spectrin and PSD‐95 , 2001, Journal of neurochemistry.
[24] K. Roche,et al. Molecular determinants of NMDA receptor internalization , 2001, Nature Neuroscience.
[25] P. Reddy,et al. Polyglutamine-expanded Huntingtin Promotes Sensitization of N-Methyl-d-aspartate Receptors via Post-synaptic Density 95* , 2001, The Journal of Biological Chemistry.
[26] G. Westbrook,et al. A use-dependent tyrosine dephosphorylation of NMDA receptors is independent of ion flux , 2001, Nature Neuroscience.
[27] M. Salter,et al. NMDA receptor regulation by Src kinase signalling in excitatory synaptic transmission and plasticity , 2001, Current Opinion in Neurobiology.
[28] J. Leonard,et al. Identification of mouse NMDA receptor subunit NR2A C‐terminal tyrosine sites phosphorylated by coexpression with v‐Src , 2001, Journal of neurochemistry.
[29] Elena Cattaneo,et al. Loss of normal huntingtin function: new developments in Huntington's disease research , 2001, Trends in Neurosciences.
[30] J. Roder,et al. CAKβ/Pyk2 Kinase Is a Signaling Link for Induction of Long-Term Potentiation in CA1 Hippocampus , 2001, Neuron.
[31] Shoji Komai,et al. Characterization of Fyn-mediated Tyrosine Phosphorylation Sites on GluRε2 (NR2B) Subunit of theN-Methyl-d-aspartate Receptor* , 2001, The Journal of Biological Chemistry.
[32] J. Bjorge,et al. Identification of Protein-tyrosine Phosphatase 1B as the Major Tyrosine Phosphatase Activity Capable of Dephosphorylating and Activating c-Src in Several Human Breast Cancer Cell Lines* , 2000, The Journal of Biological Chemistry.
[33] Michael E Greenberg,et al. EphB Receptors Interact with NMDA Receptors and Regulate Excitatory Synapse Formation , 2000, Cell.
[34] M. Brunelli,et al. PACAP-38 enhances excitatory synaptic transmission in the rat hippocampal CA1 region. , 2000, Learning & memory.
[35] Xin-Yun Huang,et al. Src Tyrosine Kinase Is a Novel Direct Effector of G Proteins , 2000, Cell.
[36] M. Baudry,et al. Src-mediated Tyrosine Phosphorylation of NR2 Subunits of N-Methyl-d-Aspartate Receptors Protects from Calpain-mediated Truncation of Their C-terminal Domains* , 2000, The Journal of Biological Chemistry.
[37] G. Siggins,et al. A role for Src kinase in spontaneous epileptiform activity in the CA3 region of the hippocampus. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[38] S. Grant,et al. Proteomic analysis of NMDA receptor–adhesion protein signaling complexes , 2000, Nature Neuroscience.
[39] C. Woolf,et al. Neuronal plasticity: increasing the gain in pain. , 2000, Science.
[40] H. Vaudry,et al. Pituitary adenylate cyclase-activating polypeptide and its receptors: from structure to functions. , 2000, Pharmacological reviews.
[41] M. Mishina,et al. The Protein-tyrosine Phosphatase PTPMEG Interacts with Glutamate Receptor δ2 and ε Subunits* , 2000, The Journal of Biological Chemistry.
[42] H. Rauvala,et al. High‐frequency synaptic stimulation induces association of fyn and c‐src to distinct phosphorylated components , 2000, Neuroreport.
[43] M. Katsuki,et al. Regulation of Long-Term Potentiation by H-Ras through NMDA Receptor Phosphorylation , 2000, The Journal of Neuroscience.
[44] G. Superti-Furga,et al. Crosstalk between the catalytic and regulatory domains allows bidirectional regulation of Src , 2000, Nature Structural Biology.
[45] L. Teves,et al. Altered Association of Protein Tyrosine Kinases with Postsynaptic Densities after Transient Cerebral Ischemia in the Rat Brain , 2000, Journal of cerebral blood flow and metabolism : official journal of the International Society of Cerebral Blood Flow and Metabolism.
[46] J. Roder,et al. Src Potentiation of NMDA Receptors in Hippocampal and Spinal Neurons Is Not Mediated by Reducing Zinc Inhibition , 1999, The Journal of Neuroscience.
[47] C. Hisatsune,et al. Phosphorylation–dependent interaction of the N‐methyl‐ d‐aspartate receptor ε2 subunit with phosphatidylinositol 3‐kinase , 1999 .
[48] R. Nicoll,et al. Long-term potentiation--a decade of progress? , 1999, Science.
[49] L. Teves,et al. The Effect of Transient Global Ischemia on the Interaction of Src and Fyn with the N-Methyl-d-Aspartate Receptor and Postsynaptic Densities: Possible Involvement of Src Homology 2 Domains , 1999, Journal of cerebral blood flow and metabolism : official journal of the International Society of Cerebral Blood Flow and Metabolism.
[50] M Marsh,et al. The structural era of endocytosis. , 1999, Science.
[51] M. Salter,et al. Src, a molecular switch governing gain control of synaptic transmission mediated by N-methyl-D-aspartate receptors. , 1999, Proceedings of the National Academy of Sciences of the United States of America.
[52] I. Black,et al. Brain-derived neurotrophic factor enhances association of protein tyrosine phosphatase PTP1D with the NMDA receptor subunit NR2B in the cortical postsynaptic density. , 1999, Brain research. Molecular brain research.
[53] K. Lim,et al. Targeted disruption of the tyrosine phosphatase PTPα leads to constitutive downregulation of the kinases Src and Fyn , 1999, Current Biology.
[54] S. Harrison,et al. Crystal structures of c-Src reveal features of its autoinhibitory mechanism. , 1999, Molecular cell.
[55] Wei Yang Lu,et al. G-protein-coupled receptors act via protein kinase C and Src to regulate NMDA receptors , 1999, Nature Neuroscience.
[56] A. Doyle. Structure Functions , 1998, hep-ex/9812029.
[57] Xian-Min Yu,et al. Gain control of NMDA-receptor currents by intracellular sodium , 1998, Nature.
[58] B. Orser,et al. Regulation of N-methyl-D-aspartate receptor function by constitutively active protein kinase C. , 1998, Molecular pharmacology.
[59] J. Peacock,et al. Protein-tyrosine Phosphatase α Regulates Src Family Kinases and Alters Cell-Substratum Adhesion* , 1998, The Journal of Biological Chemistry.
[60] E. Kandel,et al. Higher seizure susceptibility and enhanced tyrosine phosphorylation of N-methyl-D-aspartate receptor subunit 2B in fyn transgenic mice. , 1998, Learning & memory.
[61] M. Salter. Src, N-methyl-D-aspartate (NMDA) receptors, and synaptic plasticity. , 1998, Biochemical pharmacology.
[62] A. Levey,et al. Activation of the genetically defined m1 muscarinic receptor potentiates N-methyl-D-aspartate (NMDA) receptor currents in hippocampal pyramidal cells. , 1998, Proceedings of the National Academy of Sciences of the United States of America.
[63] S. Traynelis,et al. Tyrosine kinase potentiates NMDA receptor currents by reducing tonic zinc inhibition , 1998, Nature Neuroscience.
[64] C. Cartwright,et al. RACK1, a Receptor for Activated C Kinase and a Homolog of the β Subunit of G Proteins, Inhibits Activity of Src Tyrosine Kinases and Growth of NIH 3T3 Cells , 1998, Molecular and Cellular Biology.
[65] K. Lim,et al. Physical and Functional Interactions between Receptor-like Protein-tyrosine Phosphatase α and p59 fyn * , 1998, The Journal of Biological Chemistry.
[66] I. Black,et al. BDNF acutely increases tyrosine phosphorylation of the NMDA receptor subunit 2B in cortical and hippocampal postsynaptic densities. , 1998, Brain research. Molecular brain research.
[67] J. Roder,et al. Src activation in the induction of long-term potentiation in CA1 hippocampal neurons. , 1998, Science.
[68] R. Skoda,et al. Leptin Receptor Immunoreactivity in Chemically Defined Target Neurons of the Hypothalamus , 1998, The Journal of Neuroscience.
[69] J. Gurd,et al. Transient Ischemia Differentially Increases Tyrosine Phosphorylation of NMDA Receptor Subunits 2A and 2B , 1997, Journal of neurochemistry.
[70] I. Levitan,et al. Tyrosine phosphorylation modulates current amplitude and kinetics of a neuronal voltage-gated potassium channel. , 1997, Journal of neurophysiology.
[71] G. Mills,et al. Src Kinase Activity Is Regulated by the SHP-1 Protein-tyrosine Phosphatase* , 1997, The Journal of Biological Chemistry.
[72] K. Chung,et al. Differentiation of central nervous system neuronal cells by fibroblast-derived growth factor requires at least two signaling pathways: roles for Ras and Src , 1997, Molecular and cellular biology.
[73] J. Gurd,et al. The N‐Methyl‐d‐Aspartate Receptor Subunits NR2A and NR2B Bind to the SH2 Domains of Phospholipase C‐γ , 1997 .
[74] Michael J. Eck,et al. Three-dimensional structure of the tyrosine kinase c-Src , 1997, Nature.
[75] Xian-Min Yu,et al. NMDA Channel Regulation by Channel-Associated Protein Tyrosine Kinase Src , 1997, Science.
[76] S. Lev,et al. A role for Pyk2 and Src in linking G-protein-coupled receptors with MAP kinase activation , 1996, Nature.
[77] Y. Dudai,et al. Long-term potentiation increases tyrosine phosphorylation of the N-methyl-D-aspartate receptor subunit 2B in rat dentate gyrus in vivo. , 1996, Proceedings of the National Academy of Sciences of the United States of America.
[78] T. Bliss,et al. Enhanced tyrosine phosphorylation of the 2B subunit of the N-methyl-D-aspartate receptor in long-term potentiation. , 1996, Proceedings of the National Academy of Sciences of the United States of America.
[79] Shu-Jen Chen,et al. Protein Tyrosine Kinase‐Mediated Potentiation of Currents from Cloned NMDA Receptors , 1996, Journal of neurochemistry.
[80] M. Cataldi,et al. Protein-tyrosine Kinases Activate while Protein-tyrosine Phosphatases Inhibit L-type Calcium Channel Activity in Pituitary GH Cells (*) , 1996, The Journal of Biological Chemistry.
[81] P. Seeburg,et al. Subtype‐specific regulation of recombinant NMDA receptor‐channels by protein tyrosine kinases of the src family. , 1996, The Journal of physiology.
[82] M. Salter,et al. Ca(2+)-independent reduction of N-methyl-D-aspartate channel activity by protein tyrosine phosphatase. , 1996, Proceedings of the National Academy of Sciences of the United States of America.
[83] M. Greenberg,et al. Ca2+-Dependent Routes to Ras: Mechanisms for Neuronal Survival, Differentiation, and Plasticity? , 1996, Neuron.
[84] J. Hanke,et al. Discovery of a Novel, Potent, and Src Family-selective Tyrosine Kinase Inhibitor , 1996, The Journal of Biological Chemistry.
[85] T. Nishi,et al. Immunocytochemical localization of the striatal enriched protein tyrosine phosphatase in the rat striatum: A light and electron microscopic study with a complementary DNA-generated polyclonal antibody , 1995, Neuroscience.
[86] C. Cartwright,et al. Regulation of the Src tyrosine kinase and Syp tyrosine phosphatase by their cellular association. , 1995, Oncogene.
[87] Takayoshi Suzuki,et al. NMDA Receptor Subunits ϵ1 (NR2A) and ϵ2 (NR2B) Are Substrates for Fyn in the Postsynaptic Density Fraction Isolated from the Rat Brain , 1995 .
[88] E. Kandel,et al. Fyn tyrosine kinase is required for normal amygdala kindling , 1995, Epilepsy Research.
[89] Stephen J. Moss,et al. Modulation of GABAA receptors by tyrosine phosphorylation , 1995, Nature.
[90] S. Fumagalli,et al. Requirement for Src family protein tyrosine kinases in G2 for fibroblast cell division. , 1995, Science.
[91] R. Huganir,et al. Differential Tyrosine Phosphorylation of N-Methyl-D-aspartate Receptor Subunits (*) , 1995, The Journal of Biological Chemistry.
[92] I. Black,et al. Brain-derived neurotrophic factor rapidly enhances synaptic transmission in hippocampal neurons via postsynaptic tyrosine kinase receptors. , 1995, Proceedings of the National Academy of Sciences of the United States of America.
[93] M. Roussel,et al. DNA synthesis induced by some but not all growth factors requires Src family protein tyrosine kinases , 1995, Molecular and cellular biology.
[94] P. Wahle,et al. Cellular and molecular characterization of a brain-enriched protein tyrosine phosphatase , 1995, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[95] H. Hanafusa,et al. Comparative study of three protein-tyrosine phosphatases. Chicken protein-tyrosine phosphatase lambda dephosphorylates c-Src tyrosine 527. , 1994, The Journal of biological chemistry.
[96] C. McBain,et al. N-methyl-D-aspartic acid receptor structure and function. , 1994, Physiological reviews.
[97] Yu Tian Wang,et al. Regulation of NMDA receptors by tyrosine kinases and phosphatases , 1994, Nature.
[98] M. Kennedy,et al. The major tyrosine-phosphorylated protein in the postsynaptic density fraction is N-methyl-D-aspartate receptor subunit 2B. , 1994, Proceedings of the National Academy of Sciences of the United States of America.
[99] J. Fargnoli,et al. Ctk: a protein-tyrosine kinase related to Csk that defines an enzyme family. , 1994, Proceedings of the National Academy of Sciences of the United States of America.
[100] M. Resh. Interaction of tyrosine kinase oncoproteins with cellular membranes. , 1993, Biochimica et biophysica acta.
[101] G. Superti-Furga,et al. Csk inhibition of c‐Src activity requires both the SH2 and SH3 domains of Src. , 1993, The EMBO journal.
[102] T. Pawson,et al. Regulation of c-Src tyrosine kinase activity by the Src SH2 domain. , 1993, Oncogene.
[103] P Cicchetti,et al. Identification of a ten-amino acid proline-rich SH3 binding site. , 1993, Science.
[104] E. Kandel,et al. Impaired long-term potentiation, spatial learning, and hippocampal development in fyn mutant mice. , 1992, Science.
[105] Xinyang Zheng,et al. Cell transformation and activation of pp60c-src by overexpression of a protein tyrosine phosphatase , 1992, Nature.
[106] E. Kandel,et al. Long-term potentiation in the hippocampus is blocked by tyrosine kinase inhibitors , 1991, Nature.
[107] T Pawson,et al. Src homology region 2 domains direct protein-protein interactions in signal transduction. , 1990, Proceedings of the National Academy of Sciences of the United States of America.
[108] M. Okada,et al. A protein tyrosine kinase involved in regulation of pp60c-src function. , 1989, The Journal of biological chemistry.
[109] T Pawson,et al. A noncatalytic domain conserved among cytoplasmic protein-tyrosine kinases modifies the kinase function and transforming activity of Fujinami sarcoma virus P130gag-fps , 1986, Molecular and cellular biology.
[110] Jonathan A. Cooper,et al. Tyr527 is phosphorylated in pp60c-src: implications for regulation. , 1986, Science.
[111] H. Oppermann,et al. Characterization of sites for tyrosine phosphorylation in the transforming protein of Rous sarcoma virus (pp60v-src) and its normal cellular homologue (pp60c-src). , 1981, Proceedings of the National Academy of Sciences of the United States of America.
[112] H. Varmus,et al. DNA related to the transforming gene(s) of avian sarcoma viruses is present in normal avian DNA , 1976, Nature.
[113] Tiffany Lyle,et al. Modulation of NMDA Receptor-Dependent Calcium Influx and Gene Expression Through EphB Receptors , 2005 .
[114] R. Juliano,et al. Integrin Signaling , 2005, Cancer and Metastasis Reviews.
[115] C. Thornton,et al. H-Ras modulates NMDA receptor function via inhibition of Src tyrosine kinase activity , 2003 .
[116] S. Coultrap,et al. LTP leads to rapid surface expression of NMDA but not AMPA receptors in adult rat CA1 , 2002, Nature Neuroscience.
[117] J. Gurd,et al. Tyrosine phosphorylation of the N‐methyl‐d‐aspartate receptor by exogenous and postsynaptic density‐associated Src‐family kinases , 2001, Journal of neurochemistry.
[118] I. Módy. Synaptic plasticity in kindling. , 1999, Advances in neurology.
[119] C. Hisatsune,et al. Phosphorylation-dependent interaction of the N-methyl-D-aspartate receptor epsilon 2 subunit with phosphatidylinositol 3-kinase. , 1999, Genes to cells : devoted to molecular & cellular mechanisms.
[120] Mingjun Fang B.S.. Modulation of GABAA Receptor Function by Tyrosine Phosphorylation , 1998 .
[121] G. Tong. Excitatory synaptic transmission in hippocampal neurons , 1994 .