Tetrodotoxin-Resistant Sodium Channels Contribute to Directional Responses in Starburst Amacrine Cells
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[1] H. J. Wyatt,et al. Specific effects of neurotransmitter antagonists on ganglion cells in rabbit retina. , 1976, Science.
[2] J. Caldwell,et al. Effects of picrotoxin and strychnine on rabbit retinal ganglion cells: lateral interactions for cells with more complex receptive fields. , 1978, The Journal of physiology.
[3] S. Ellias,et al. The dendritic varicosity: a mechanism for electrically isolating the dendrites of cat retinal amacrine cells? , 1980, Brain Research.
[4] A. Ames,et al. In Vitro Retina as an Experimental Model of the Central Nervous System , 1981, Journal of neurochemistry.
[5] S. Bloomfield,et al. Electroanatomy of a unique amacrine cell in the rabbit retina. , 1983, Proceedings of the National Academy of Sciences of the United States of America.
[6] R R Poznanski,et al. Modelling the electrotonic structure of starburst amacrine cells in the rabbit retina: A functional interpretation of dendritic morphology , 1992, Bulletin of mathematical biology.
[7] R. Rogart,et al. A Mutant of TTX-Resistant Cardiac Sodium Channels with TTX-Sensitive Properties , 1992, Science.
[8] S. Bloomfield,et al. Relationship between receptive and dendritic field size of amacrine cells in the rabbit retina. , 1992, Journal of neurophysiology.
[9] J. Elliott,et al. Characterization of TTX‐sensitive and TTX‐resistant sodium currents in small cells from adult rat dorsal root ganglia. , 1993, The Journal of physiology.
[10] H. Tatebayashi,et al. Kinetic analysis of two types of Na+ channels in rat dorsal root ganglia. , 1993, The Journal of physiology.
[11] DI Vaney,et al. Territorial organization of direction-selective ganglion cells in rabbit retina , 1994, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[12] Daniel Johnston,et al. Dendritic attenuation of synaptic potentials and currents: the role of passive membrane properties , 1994, Trends in Neurosciences.
[13] R. Jensen,et al. Receptive-field properties of displaced starburst amacrine cells change following axotomy-induced degeneration of ganglion cells , 1995, Visual Neuroscience.
[14] Quinoxalines block the mechanism of directional selectivity in ganglion cells of the rabbit retina. , 1995, Proceedings of the National Academy of Sciences of the United States of America.
[15] H. Wässle,et al. Receptive Field Properties of Starburst Cholinergic Amacrine Cells in the Rabbit Retina , 1995, The European journal of neuroscience.
[16] R. Jensen. Effects of Ca2+ channel blockers on directional selectivity of rabbit retinal ganglion cells. , 1995, Journal of neurophysiology.
[17] Z. J. Zhou,et al. Starburst amacrine cells change from spiking to nonspiking neurons during retinal development. , 1996, Proceedings of the National Academy of Sciences of the United States of America.
[18] R. Masland,et al. Responses to light of starburst amacrine cells. , 1996, Journal of neurophysiology.
[19] T. Velte,et al. Spiking and nonspiking models of starburst amacrine cells in the rabbit retina , 1997, Visual Neuroscience.
[20] S. Waxman,et al. Downregulation of Tetrodotoxin-Resistant Sodium Currents and Upregulation of a Rapidly Repriming Tetrodotoxin-Sensitive Sodium Current in Small Spinal Sensory Neurons after Nerve Injury , 1997, The Journal of Neuroscience.
[21] S. Massey,et al. Pharmacology of directionally selective ganglion cells in the rabbit retina. , 1997, Journal of neurophysiology.
[22] P. Lukasiewicz,et al. Action Potentials Are Required for the Lateral Transmission of Glycinergic Transient Inhibition in the Amphibian Retina , 1998, The Journal of Neuroscience.
[23] W R Taylor,et al. TTX attenuates surround inhibition in rabbit retinal ganglion cells , 1999, Visual Neuroscience.
[24] Dendritic computation of direction selectivity by retinal ganglion cells. , 2000, Science.
[25] Z. Pan,et al. Voltage-dependent Na(+) currents in mammalian retinal cone bipolar cells. , 2000, Journal of neurophysiology.
[26] H. Fozzard,et al. A critical residue for isoform difference in tetrodotoxin affinity is a molecular determinant of the external access path for local anesthetics in the cardiac sodium channel. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[27] E. Cohen. Voltage-gated calcium and sodium currents of starburst amacrine cells in the rabbit retina , 2001, Visual Neuroscience.
[28] Lyle J. Borg-Graham,et al. The computation of directional selectivity in the retina occurs presynaptic to the ganglion cell , 2001, Nature Neuroscience.
[29] G. Matthews,et al. Voltage-Dependent Sodium Channels Are Expressed in Nonspiking Retinal Bipolar Neurons , 2001, The Journal of Neuroscience.
[30] M. Tachibana,et al. A Key Role of Starburst Amacrine Cells in Originating Retinal Directional Selectivity and Optokinetic Eye Movement , 2001, Neuron.
[31] A. Schierloh,et al. Infrared-Guided Laser Stimulation of Neurons in Brain Slices , 2002, Science's STKE.
[32] P. Detwiler,et al. Directionally selective calcium signals in dendrites of starburst amacrine cells , 2002, Nature.
[33] T. Weiser,et al. Inhibition of tetrodotoxin (TTX)-resistant and TTX-sensitive neuronal Na(+) channels by the secretolytic ambroxol. , 2002, Molecular pharmacology.
[34] Richard H. Masland,et al. Starburst Cells Nondirectionally Facilitate the Responses of Direction-Selective Retinal Ganglion Cells , 2002, The Journal of Neuroscience.
[35] W. R. Taylor,et al. Diverse Synaptic Mechanisms Generate Direction Selectivity in the Rabbit Retina , 2002, The Journal of Neuroscience.
[36] F. Amthor,et al. Effects of the destruction of starburst-cholinergic amacrine cells by the toxin AF64A on rabbit retinal directional selectivity , 2002, Visual Neuroscience.
[37] Frank S. Werblin,et al. Mechanisms and circuitry underlying directional selectivity in the retina , 2002, Nature.
[38] Peter D Lukasiewicz,et al. Spike-dependent GABA inputs to bipolar cell axon terminals contribute to lateral inhibition of retinal ganglion cells. , 2003, Journal of neurophysiology.
[39] S. Mangel,et al. Cation–chloride cotransporters mediate neural computation in the retina , 2003, Proceedings of the National Academy of Sciences of the United States of America.
[40] Seunghoon Lee,et al. A Developmental Switch in the Excitability and Function of the Starburst Network in the Mammalian Retina , 2004, Neuron.
[41] J. J. Tukker,et al. Direction selectivity in a model of the starburst amacrine cell , 2004, Visual Neuroscience.
[42] Bernardo Rudy,et al. A Unique Role for Kv3 Voltage-Gated Potassium Channels in Starburst Amacrine Cell Signaling in Mouse Retina , 2004, The Journal of Neuroscience.
[43] F. Werblin,et al. Directional Selectivity Is Formed at Multiple Levels by Laterally Offset Inhibition in the Rabbit Retina , 2005, Neuron.
[44] Nicholas Oesch,et al. Direction-Selective Dendritic Action Potentials in Rabbit Retina , 2005, Neuron.
[45] S. Dib-Hajj,et al. Pharmacological properties of neuronal TTX-resistant sodium channels and the role of a critical serine pore residue , 2005, Pflügers Archiv.
[46] Andrey V Dmitriev,et al. Dendritic compartmentalization of chloride cotransporters underlies directional responses of starburst amacrine cells in retina , 2006, Proceedings of the National Academy of Sciences.
[47] Seunghoon Lee,et al. The Synaptic Mechanism of Direction Selectivity in Distal Processes of Starburst Amacrine Cells , 2006, Neuron.
[48] P. Detwiler,et al. A Dendrite-Autonomous Mechanism for Direction Selectivity in Retinal Starburst Amacrine Cells , 2007, PLoS biology.
[49] Y. Morishima,et al. Characterization of voltage-gated ionic channels in cholinergic amacrine cells in the mouse retina. , 2007, Journal of neurophysiology.
[50] J. Caldwell,et al. Tetrodotoxin‐resistant voltage‐gated sodium channels Nav1.8 and Nav1.9 are expressed in the retina , 2008, The Journal of comparative neurology.