NMDA Receptor GluN2B (GluRε2/NR2B) Subunit Is Crucial for Channel Function, Postsynaptic Macromolecular Organization, and Actin Cytoskeleton at Hippocampal CA3 Synapses
暂无分享,去创建一个
Masahiko Watanabe | K. Sakimura | H. Kamiya | M. Yamasaki | M. Fukaya | M. Abe | K. Akashi | R. Natsume | T. Kakizaki | Miwako Yamasaki | M. Abe
[1] Masahiko Watanabe,et al. Ablation of NMDA Receptors Enhances the Excitability of Hippocampal CA3 Neurons , 2009, PloS one.
[2] Masahiko Watanabe,et al. Left-right asymmetry of the hippocampal synapses with differential subunit allocation of glutamate receptors , 2008, Proceedings of the National Academy of Sciences.
[3] Masahiko Watanabe,et al. Functional contributions of synaptically localized NR2B subunits of the NMDA receptor to synaptic transmission and long‐term potentiation in the adult mouse CNS , 2008, The Journal of physiology.
[4] Alexander Z. Harris,et al. Extrasynaptic and synaptic NMDA receptors form stable and uniform pools in rat hippocampal slices , 2007, The Journal of physiology.
[5] Yasunori Hayashi,et al. The role of CaMKII as an F-actin-bundling protein crucial for maintenance of dendritic spine structure , 2007, Proceedings of the National Academy of Sciences.
[6] D. Choquet,et al. NMDA receptor surface mobility depends on NR2A-2B subunits , 2006, Proceedings of the National Academy of Sciences.
[7] E. D’Angelo,et al. Supplemental Data Increased Ethanol Resistance and Consumption in Eps 8 Knockout Mice Correlates with Altered Actin Dynamics , 2006 .
[8] Shigeo Okabe,et al. Differential Control of Postsynaptic Density Scaffolds via Actin-Dependent and -Independent Mechanisms , 2006, The Journal of Neuroscience.
[9] G. Westbrook,et al. Synaptic and extrasynaptic NMDA receptor NR2 subunits in cultured hippocampal neurons. , 2006, Journal of neurophysiology.
[10] R. Colbran,et al. Differential Modulation of Ca2+/Calmodulin-dependent Protein Kinase II Activity by Regulated Interactions with N-Methyl-D-aspartate Receptor NR2B Subunits and α-Actinin* , 2005, Journal of Biological Chemistry.
[11] Min Zhuo,et al. Roles of NMDA NR2B Subtype Receptor in Prefrontal Long-Term Potentiation and Contextual Fear Memory , 2005, Neuron.
[12] C. Aoki,et al. Erratum: Drebrin A is a postsynaptic protein that localizes in vivo to the submembranous surface of dendritic sites forming excitatory synapses. (Journal of Comparative Neurology (2005) 483 (383-402)) , 2005 .
[13] M. Sheng,et al. Differential Roles of NR2A- and NR2B-Containing NMDA Receptors in Ras-ERK Signaling and AMPA Receptor Trafficking , 2005, Neuron.
[14] C. Aoki,et al. Drebrin A is a postsynaptic protein that localizes in vivo to the submembranous surface of dendritic sites forming excitatory synapses , 2005, The Journal of comparative neurology.
[15] Masahiko Watanabe,et al. Signaling complex formation of phospholipase Cβ4 with metabotropic glutamate receptor type 1α and 1,4,5‐trisphosphate receptor at the perisynapse and endoplasmic reticulum in the mouse brain , 2004, The European journal of neuroscience.
[16] R. Weinberg,et al. The Subcellular Organization of Cortactin in Hippocampus , 2004, The Journal of Neuroscience.
[17] E. G. Jones,et al. Switching of NMDA Receptor 2A and 2B Subunits at Thalamic and Cortical Synapses during Early Postnatal Development , 2004, The Journal of Neuroscience.
[18] M. Sheng,et al. The dynamic turnover and functional roles of α-actinin in dendritic spines , 2004, Neuropharmacology.
[19] Masahiko Watanabe,et al. Target-Cell-Specific Left-Right Asymmetry of NMDA Receptor Content in Schaffer Collateral Synapses in ϵ1/NR2A Knock-Out Mice , 2004, The Journal of Neuroscience.
[20] Masahiko Watanabe,et al. NMDA Receptor GluRϵ/NR2 Subunits Are Essential for Postsynaptic Localization and Protein Stability of GluRζ1/NR1 Subunit , 2004, The Journal of Neuroscience.
[21] M. Sheng,et al. Role of NMDA Receptor Subtypes in Governing the Direction of Hippocampal Synaptic Plasticity , 2004, Science.
[22] E. Quinlan,et al. A Molecular Mechanism for Stabilization of Learning-Induced Synaptic Modifications , 2004, Neuron.
[23] Heike Hering,et al. Activity-Dependent Redistribution and Essential Role of Cortactin in Dendritic Spine Morphogenesis , 2003, The Journal of Neuroscience.
[24] Ryosuke Kawakami,et al. Asymmetrical Allocation of NMDA Receptor ε2 Subunits in Hippocampal Circuitry , 2003, Science.
[25] Yasuhiko Ohta,et al. Hippocampal LTP Is Accompanied by Enhanced F-Actin Content within the Dendritic Spine that Is Essential for Late LTP Maintenance In Vivo , 2003, Neuron.
[26] A. Auerbach,et al. Modal gating of NMDA receptors and the shape of their synaptic response , 2003, Nature Neuroscience.
[27] S. Tonegawa,et al. Retention of NMDA receptor NR2 subunits in the lumen of endoplasmic reticulum in targeted NR1 knockout mice , 2003, Proceedings of the National Academy of Sciences of the United States of America.
[28] Roberto Malinow,et al. Subunit-Specific NMDA Receptor Trafficking to Synapses , 2002, Neuron.
[29] Masahiko Watanabe,et al. Early onset of NMDA receptor GluRε1 (NR2A) expression and its abundant postsynaptic localization in developing motoneurons of the mouse hypoglossal nucleus , 2002, Neuroscience Research.
[30] T. Takeuchi,et al. Flp recombinase transgenic mice of C57BL/6 strain for conditional gene targeting. , 2002, Biochemical and biophysical research communications.
[31] M. Crair,et al. Barrel Cortex Critical Period Plasticity Is Independent of Changes in NMDA Receptor Subunit Composition , 2001, Neuron.
[32] J. Bockmann,et al. Synaptic Scaffolding Proteins in Rat Brain , 2001, The Journal of Biological Chemistry.
[33] M E Martone,et al. Selective localization of high concentrations of F‐actin in subpopulations of dendritic spines in rat central nervous system: A three‐dimensional electron microscopic study , 2001, The Journal of comparative neurology.
[34] Mark Farrant,et al. NMDA receptor subunits: diversity, development and disease , 2001, Current Opinion in Neurobiology.
[35] Masahiko Watanabe,et al. NMDA receptor subunits GluRε1, GluRε3 and GluRζ1 are enriched at the mossy fibre–granule cell synapse in the adult mouse cerebellum , 2001 .
[36] Masahiko Watanabe,et al. Postsynaptic Modulation of AMPA Receptor-Mediated Synaptic Responses and LTP by the Type 3 Ryanodine Receptor , 2001, Molecular and Cellular Neuroscience.
[37] J. Miyazaki,et al. Purkinje cell-specific and inducible gene recombination system generated from C57BL/6 mouse ES cells. , 2001, Biochemical and biophysical research communications.
[38] M. Fukaya,et al. Improved immunohistochemical detection of postsynaptically located PSD‐95/SAP90 protein family by protease section pretreatment: A study in the adult mouse brain , 2000, The Journal of comparative neurology.
[39] Susumu Tonegawa,et al. Cortex-restricted disruption of NMDAR1 impairs neuronal patterns in the barrel cortex , 2000, Nature.
[40] A. Craig,et al. Postsynaptic Scaffolds of Excitatory and Inhibitory Synapses in Hippocampal Neurons: Maintenance of Core Components Independent of Actin Filaments and Microtubules , 2000, The Journal of Neuroscience.
[41] Masahiko Watanabe,et al. Cerebellar Granule Cell-Specific and Inducible Expression of Cre Recombinase in the Mouse , 1999, The Journal of Neuroscience.
[42] E. Shimizu,et al. Genetic enhancement of learning and memory in mice , 1999, Nature.
[43] M. Khrestchatisky,et al. Differential interaction of the tSXV motifs of the NR1 and NR2A NMDA receptor subunits with PSD‐95 and SAP97 , 1999, The European journal of neuroscience.
[44] G. Westbrook,et al. The Incorporation of NMDA Receptors with a Distinct Subunit Composition at Nascent Hippocampal Synapses In Vitro , 1999, The Journal of Neuroscience.
[45] Mark F. Bear,et al. Rapid, experience-dependent expression of synaptic NMDA receptors in visual cortex in vivo , 1999, Nature Neuroscience.
[46] R. Zucker,et al. Selective induction of LTP and LTD by postsynaptic [Ca2+]i elevation. , 1999, Journal of neurophysiology.
[47] T. Manabe,et al. Increased Thresholds for Long-Term Potentiation and Contextual Learning in Mice Lacking the NMDA-type Glutamate Receptor ε1 Subunit , 1998, The Journal of Neuroscience.
[48] Masahiko Watanabe,et al. Role of the Carboxy-Terminal Region of the GluRε2 Subunit in Synaptic Localization of the NMDA Receptor Channel , 1998, Neuron.
[49] Daniel E Feldman,et al. Long-Term Depression at Thalamocortical Synapses in Developing Rat Somatosensory Cortex , 1998, Neuron.
[50] D. Colquhoun,et al. Single‐channel activations and concentration jumps: comparison of recombinant NR1a/NR2A and NR1a/NR2D NMDA receptors , 1998, The Journal of physiology.
[51] Masahiko Watanabe,et al. Cytological compartmentalization in the staggerer cerebellum, as revealed by calbindin immunohistochemistry for Purkinje cells , 1998, The Journal of comparative neurology.
[52] A. Craig,et al. Role of Actin in Anchoring Postsynaptic Receptors in Cultured Hippocampal Neurons: Differential Attachment of NMDA versus AMPA Receptors , 1998, The Journal of Neuroscience.
[53] R. Weinberg,et al. Differential Regional Expression and Ultrastructural Localization of α-Actinin-2, a Putative NMDA Receptor-Anchoring Protein, in Rat Brain , 1998, The Journal of Neuroscience.
[54] S. Vicini,et al. Increased contribution of NR2A subunit to synaptic NMDA receptors in developing rat cortical neurons , 1998, The Journal of physiology.
[55] Masahiko Watanabe,et al. Selective scarcity of NMDA receptor channel subunits in the stratum lucidum (mossy fibre‐recipient layer) of the mouse hippocampal CA3 subfield , 1998, The European journal of neuroscience.
[56] M. Binder,et al. Functional identification of the input‐output transforms of motoneurones in the rat and cat , 1997, The Journal of physiology.
[57] K. Sakimura,et al. Synapse‐selective impairment of NMDA receptor functions in mice lacking NMDA receptor epsilon 1 or epsilon 2 subunit. , 1997, The Journal of physiology.
[58] Ann Marie Craig,et al. Competitive binding of α-actinin and calmodulin to the NMDA receptor , 1997, Nature.
[59] S. Tonegawa,et al. The Essential Role of Hippocampal CA1 NMDA Receptor–Dependent Synaptic Plasticity in Spatial Memory , 1996, Cell.
[60] Hiroshi Kadotani,et al. Motor Discoordination Results from Combined Gene Disruption of the NMDA Receptor NR2A and NR2C Subunits, But Not from Single Disruption of the NR2A or NR2C Subunit , 1996, The Journal of Neuroscience.
[61] M. Sheng,et al. Heteromultimerization and NMDA Receptor-Clustering Activity of Chapsyn-110, a Member of the PSD-95 Family of Proteins , 1996, Neuron.
[62] M. Sheng,et al. Interaction between the C terminus of NMDA receptor subunits and multiple members of the PSD-95 family of membrane-associated guanylate kinases , 1996, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[63] Masahiko Watanabe,et al. Impairment of Suckling Response, Trigeminal Neuronal Pattern Formation, and Hippocampal LTD in NMDA Receptor ε2 Subunit Mutant Mice , 1996, Neuron.
[64] M. Mishina,et al. Structure and function of the NMDA receptor channel , 1995, Neuropharmacology.
[65] P. Seeburg,et al. Domain interaction between NMDA receptor subunits and the postsynaptic density protein PSD-95. , 1995, Science.
[66] Michael C. Crair,et al. A critical period for long-term potentiation at thalamocortical synapses , 1995, Nature.
[67] T. Yagi,et al. Reduced hippocampal LTP and spatial learning in mice lacking NMDA receptor ε1 subunit , 1995, Nature.
[68] J. Miyazaki,et al. Site-specific recombination of a transgene in fertilized eggs by transient expression of Cre recombinase. , 1995, Proceedings of the National Academy of Sciences of the United States of America.
[69] P. Ascher,et al. Mechanosensitivity of NMDA receptors in cultured mouse central neurons , 1994, Neuron.
[70] M. Bear,et al. Synaptic plasticity: LTP and LTD , 1994, Current Opinion in Neurobiology.
[71] P. Stern,et al. Single channel properties of cloned NMDA receptors in a human cell line: comparison with results from Xenopus oocytes. , 1994, The Journal of physiology.
[72] B. Sakmann,et al. Developmental and regional expression in the rat brain and functional properties of four NMDA receptors , 1994, Neuron.
[73] Susumu Tonegawa,et al. Whisker-related neuronal patterns fail to develop in the trigeminal brainstem nuclei of NMDAR1 knockout mice , 1994, Cell.
[74] Masahiko Watanabe,et al. Distinct distributions of five N‐methyl‐D‐aspartate receptor channel subunit mRNAs in the forebrain , 1993, The Journal of comparative neurology.
[75] P. Seeburg. The TiPS/TINS lecture: the molecular biology of mammalian glutamate receptor channels. , 1993, Trends in pharmacological sciences.
[76] S. Heinemann,et al. Zinc potentiates agonist-lnduced currents at certain splice variants of the NMDA receptor , 1993, Neuron.
[77] Christian Rosenmund,et al. Calcium-induced actin depolymerization reduces NMDA channel activity , 1993, Neuron.
[78] T. Yamakura,et al. Involvement of the carboxyl-terminal region in modulation by TPA of the NMDA receptor channel. , 1993, Neuroreport.
[79] P. Rakic,et al. Modulation of neuronal migration by NMDA receptors. , 1993, Science.
[80] T. Bliss,et al. A synaptic model of memory: long-term potentiation in the hippocampus , 1993, Nature.
[81] K. Sakimura,et al. Developmental changes in distribution of NMDA receptor channel subunit mRNAs. , 1992, Neuroreport.
[82] G. Carmignoto,et al. Activity-dependent decrease in NMDA receptor responses during development of the visual cortex. , 1992, Science.
[83] T. Yamakura,et al. Identification by mutagenesis of a Mg2+ -block site of the NMDA receptor channel , 1992, Nature.
[84] K. Sakimura,et al. Molecular diversity of the NMDA receptor channel , 1992, Nature.
[85] S. Nakanishi,et al. Structures and properties of seven isoforms of the NMDA receptor generated by alternative splicing. , 1992, Biochemical and biophysical research communications.
[86] Shaul Hestrin,et al. Developmental regulation of NMDA receptor-mediated synaptic currents at a central synapse , 1992, Nature.
[87] Bert Sakmann,et al. Heteromeric NMDA Receptors: Molecular and Functional Distinction of Subtypes , 1992, Science.
[88] M. Yamazaki,et al. Functional characterization of a heteromeric NMDA receptor channel expressed from cloned cDNAs , 1992, Nature.
[89] P. Seeburg,et al. Cloning of a putative high-affinity kainate receptor expressed predominantly in hippocampal CA3 cells , 1991, Nature.
[90] S. Nagata,et al. pEF-BOS, a powerful mammalian expression vector. , 1990, Nucleic acids research.
[91] R. Nicoll,et al. Comparison of two forms of long-term potentiation in single hippocampal neurons. , 1990, Science.
[92] C. Cotman,et al. Long-term potentiation of guinea pig mossy fiber responses is not blocked by N-methyl d-aspartate antagonists , 1986, Neuroscience Letters.
[93] M. Mayer,et al. Voltage-dependent block by Mg2+ of NMDA responses in spinal cord neurones , 1984, Nature.
[94] L. Nowak,et al. Magnesium gates glutamate-activated channels in mouse central neurones , 1984, Nature.
[95] A. Matus,et al. High actin concentrations in brain dendritic spines and postsynaptic densities. , 1982, Proceedings of the National Academy of Sciences of the United States of America.
[96] P Siekevitz,et al. Isolation and characterization of postsynaptic densities from various brain regions: enrichment of different types of postsynaptic densities , 1980, The Journal of cell biology.
[97] K. Sakimura,et al. Biosynthesis of the Brain‐specific 14‐3‐2 Protein in a Cell‐free System from Wheat Germ Extract Directed with Poly(A)‐containing RNA from Rat Brain , 1980, Journal of neurochemistry.
[98] Oliver H. Lowry,et al. Protein measurement with the Folin phenol reagent. , 1951, The Journal of biological chemistry.
[99] Matthew T. Geballe,et al. Structure and Function of the NMDA Receptor , 2008 .
[100] Masahiko Watanabe,et al. Synapse-selective impairment of NMDA receptor functions in mice lacking NMDA receptor eI or e 2 subunit , 2005 .
[101] G. Westbrook,et al. Fast NMDA Receptor–Mediated Synaptic Currents in Neurons From Mice Lacking the ε2 (NR2B) Subunit , 2000 .
[102] S. Nakanishi,et al. Molecular diversity of glutamate receptors and their physiological functions. , 1994, EXS.
[103] Stephen J. Smith,et al. NMDA-receptor activation increases cytoplasmic calcium concentration in cultured spinal cord neurones , 1986, Nature.