Essential Role for Vav Guanine Nucleotide Exchange Factors in Brain-Derived Neurotrophic Factor-Induced Dendritic Spine Growth and Synapse Plasticity
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J. A. Varela | R. Greene | C. Cowan | Leah S. Leverich | K. Dietz | Carly F. Hale | Benjamin C. Zirlin | Cody B Wood
[1] K. Shen,et al. Guidance molecules in synapse formation and plasticity. , 2010, Cold Spring Harbor perspectives in biology.
[2] Y. Barde,et al. Global Deprivation of Brain-Derived Neurotrophic Factor in the CNS Reveals an Area-Specific Requirement for Dendritic Growth , 2010, The Journal of Neuroscience.
[3] Gary Lynch,et al. Different Rho GTPase–dependent signaling pathways initiate sequential steps in the consolidation of long-term potentiation , 2009, The Journal of cell biology.
[4] C. Bramham. Local protein synthesis, actin dynamics, and LTP consolidation , 2008, Current Opinion in Neurobiology.
[5] P. Greengard,et al. Cocaine Regulates MEF2 to Control Synaptic and Behavioral Plasticity , 2008, Neuron.
[6] G. Westbrook,et al. Neurotrophin-Dependent Dendritic Filopodial Motility: A Convergence on PI3K Signaling , 2008, The Journal of Neuroscience.
[7] M. Frerking,et al. Spine Expansion and Stabilization Associated with Long-Term Potentiation , 2008, The Journal of Neuroscience.
[8] Y. Goda,et al. Actin in action: the interplay between the actin cytoskeleton and synaptic efficacy , 2008, Nature Reviews Neuroscience.
[9] Haruo Kasai,et al. Protein Synthesis and Neurotrophin-Dependent Structural Plasticity of Single Dendritic Spines , 2008, Science.
[10] Jun Noguchi,et al. The Subspine Organization of Actin Fibers Regulates the Structure and Plasticity of Dendritic Spines , 2008, Neuron.
[11] D. Surmeier,et al. Kalirin-7 Controls Activity-Dependent Structural and Functional Plasticity of Dendritic Spines , 2007, Neuron.
[12] H. Yokote,et al. Regulation of Ephexin1, a Guanine Nucleotide Exchange Factor of Rho Family GTPases, by Fibroblast Growth Factor Receptor-mediated Tyrosine Phosphorylation* , 2007, Journal of Biological Chemistry.
[13] J. V. van Buul,et al. VEGF-induced Rac1 activation in endothelial cells is regulated by the guanine nucleotide exchange factor Vav2. , 2007, Experimental cell research.
[14] M. Greenberg,et al. Polarized Signaling Endosomes Coordinate BDNF-Induced Chemotaxis of Cerebellar Precursors , 2007, Neuron.
[15] G. Lynch,et al. Behavioral / Systems / Cognitive Brain-Derived Neurotrophic Factor Promotes Long-Term Potentiation-Related Cytoskeletal Changes in Adult Hippocampus , 2007 .
[16] W. Mobley,et al. TrkB binds and tyrosine-phosphorylates Tiam1, leading to activation of Rac1 and induction of changes in cellular morphology , 2006, Proceedings of the National Academy of Sciences.
[17] Dana M. Brantley-Sieders,et al. Essential Role of Vav Family Guanine Nucleotide Exchange Factors in EphA Receptor-Mediated Angiogenesis , 2006, Molecular and Cellular Biology.
[18] Y. Goda,et al. The actin cytoskeleton: integrating form and function at the synapse. , 2005, Annual review of neuroscience.
[19] D. Ginty,et al. Pincher-Mediated Macroendocytosis Underlies Retrograde Signaling by Neurotrophin Receptors , 2005, The Journal of Neuroscience.
[20] R. Thapar,et al. Recognition and activation of Rho GTPases by Vav1 and Vav2 guanine nucleotide exchange factors. , 2005, Biochemistry.
[21] Eric C. Griffith,et al. Vav Family GEFs Link Activated Ephs to Endocytosis and Axon Guidance , 2005, Neuron.
[22] M. Greenberg,et al. Eph-Dependent Tyrosine Phosphorylation of Ephexin1 Modulates Growth Cone Collapse , 2005, Neuron.
[23] B. Luikart,et al. TrkB Has a Cell-Autonomous Role in the Establishment of Hippocampal Schaffer Collateral Synapses , 2005, The Journal of Neuroscience.
[24] Suzanne Paradis,et al. The Rac1-GEF Tiam1 Couples the NMDA Receptor to the Activity-Dependent Development of Dendritic Arbors and Spines , 2005, Neuron.
[25] Takeharu Nagai,et al. Rapid and persistent modulation of actin dynamics regulates postsynaptic reorganization underlying bidirectional plasticity , 2004, Nature Neuroscience.
[26] Rafael Yuste,et al. Regulation of dendritic spine motility and stability by Rac1 and Rho kinase: evidence for two forms of spine motility , 2004, Molecular and Cellular Neuroscience.
[27] G. Ellis‐Davies,et al. Structural basis of long-term potentiation in single dendritic spines , 2004, Nature.
[28] Yi Zheng,et al. Rational design and characterization of a Rac GTPase-specific small molecule inhibitor. , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[29] William J Tyler,et al. Miniature synaptic transmission and BDNF modulate dendritic spine growth and form in rat CA1 neurones , 2003, The Journal of physiology.
[30] 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.
[31] T. Bonhoeffer,et al. Mechanism of TrkB-Mediated Hippocampal Long-Term Potentiation , 2002, Neuron.
[32] M. Turner,et al. VAV proteins as signal integrators for multi-subunit immune-recognition receptors , 2002, Nature Reviews Immunology.
[33] T. Bonhoeffer,et al. A caged Ab reveals an immediate/instructive effect of BDNF during hippocampal synaptic potentiation , 2001, Proceedings of the National Academy of Sciences of the United States of America.
[34] X. Bustelo. Vav proteins, adaptors and cell signaling , 2001, Oncogene.
[35] W. Tyler,et al. BDNF Enhances Quantal Neurotransmitter Release and Increases the Number of Docked Vesicles at the Active Zones of Hippocampal Excitatory Synapses , 2001, The Journal of Neuroscience.
[36] M. Greenberg,et al. EphA Receptors Regulate Growth Cone Dynamics through the Novel Guanine Nucleotide Exchange Factor Ephexin , 2001, Cell.
[37] John D. Welsh,et al. Vav3 Mediates Receptor Protein Tyrosine Kinase Signaling, Regulates GTPase Activity, Modulates Cell Morphology, and Induces Cell Transformation , 2000, Molecular and Cellular Biology.
[38] R. Yuste,et al. Regulation of dendritic spine morphology by the rho family of small GTPases: antagonistic roles of Rac and Rho. , 2000, Cerebral cortex.
[39] Xin-Yun Huang,et al. Structural Basis for Relief of Autoinhibition of the Dbl Homology Domain of Proto-Oncogene Vav by Tyrosine Phosphorylation , 2000, Cell.
[40] Ann Y. Nakayama,et al. Small GTPases Rac and Rho in the Maintenance of Dendritic Spines and Branches in Hippocampal Pyramidal Neurons , 2000, The Journal of Neuroscience.
[41] S. Halpain,et al. Dynamic actin filaments are required for stable long-term potentiation (LTP) in area CA1 of the hippocampus. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[42] C. Der,et al. Vav2 Is an Activator of Cdc42, Rac1, and RhoA* , 2000, The Journal of Biological Chemistry.
[43] X. Bustelo. Regulatory and Signaling Properties of the Vav Family , 2000, Molecular and Cellular Biology.
[44] M. Mann,et al. Analysis of receptor signaling pathways by mass spectrometry: identification of vav-2 as a substrate of the epidermal and platelet-derived growth factor receptors. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[45] Tobias Bonhoeffer,et al. Essential Role for TrkB Receptors in Hippocampus-Mediated Learning , 1999, Neuron.
[46] T. Bonhoeffer,et al. Relative Contribution of Endogenous Neurotrophins in Hippocampal Long-Term Potentiation , 1999, The Journal of Neuroscience.
[47] L. Zhang,et al. Impairments in High-Frequency Transmission, Synaptic Vesicle Docking, and Synaptic Protein Distribution in the Hippocampus of BDNF Knockout Mice , 1999, The Journal of Neuroscience.
[48] John E. Lisman,et al. A Role of Actin Filament in Synaptic Transmission and Long-Term Potentiation , 1999, The Journal of Neuroscience.
[49] K. Schuebel,et al. Phosphorylation‐dependent and constitutive activation of Rho proteins by wild‐type and oncogenic Vav‐2 , 1998, The EMBO journal.
[50] C. Der,et al. Lck regulates Vav activation of members of the Rho family of GTPases , 1997, Molecular and cellular biology.
[51] John G. Collard,et al. Expression ofTiam-1in the Developing Brain Suggests a Role for the Tiam-1–Rac Signaling Pathway in Cell Migration and Neurite Outgrowth , 1997, Molecular and Cellular Neuroscience.
[52] K. Schuebel,et al. Phosphotyrosine-dependent activation of Rac-1 GDP/GTP exchange by the vav proto-oncogene product , 1997, Nature.
[53] B. Lu,et al. Regulation of synaptic responses to high-frequency stimulation and LTP by neurotrophins in the hippocampus , 1996, Nature.
[54] Ted Abel,et al. Recombinant BDNF Rescues Deficits in Basal Synaptic Transmission and Hippocampal LTP in BDNF Knockout Mice , 1996, Neuron.
[55] Y. Zheng,et al. The Dbl family of oncogenes. , 1996, Current opinion in cell biology.
[56] T Bonhoeffer,et al. Hippocampal long-term potentiation is impaired in mice lacking brain-derived neurotrophic factor. , 1995, Proceedings of the National Academy of Sciences of the United States of America.
[57] O. Steward,et al. Evidence that protein constituents of postsynaptic membrane specializations are locally synthesized: analysis of proteins synthesized within synaptosomes , 1991, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[58] D. Muller,et al. A simple method for organotypic cultures of nervous tissue , 1991, Journal of Neuroscience Methods.
[59] J. Delgado-García,et al. Mutation at the TrkB PLC{gamma}-docking site affects hippocampal LTP and associative learning in conscious mice. , 2007, Learning & memory.
[60] Liqun Luo,et al. Actin cytoskeleton regulation in neuronal morphogenesis and structural plasticity. , 2002, Annual review of cell and developmental biology.
[61] R. Yuste,et al. Morphological changes in dendritic spines associated with long-term synaptic plasticity. , 2001, Annual review of neuroscience.
[62] John G. Collard,et al. Expression of Tiam-1 in the developing brain suggests a role for the Tiam-1-Rac signaling pathway in cell migration and neurite outgrowth. , 1997, Molecular and cellular neurosciences.
[63] S. B. Kater,et al. Dendritic spines: cellular specializations imparting both stability and flexibility to synaptic function. , 1994, Annual review of neuroscience.