Sustained Ca2+ Entry Elicits Transient Postsynaptic Currents at a Retinal Ribbon Synapse
暂无分享,去创建一个
[1] Gary Matthews,et al. Calcium dependence of the rate of exocytosis in a synaptic terminal , 1994, Nature.
[2] G. Matthews,et al. The Role of Mitochondria in Presynaptic Calcium Handling at a Ribbon Synapse , 2000, Neuron.
[3] G. Westbrook,et al. The time course of glutamate in the synaptic cleft. , 1992, Science.
[4] G. Matthews,et al. Depletion and Replenishment of Vesicle Pools at a Ribbon-Type Synaptic Terminal , 1997, The Journal of Neuroscience.
[5] E. Hartveit,et al. AII amacrine cells express functional NMDA receptors , 1997, Neuroreport.
[6] M. Mayer,et al. Inward rectification of both AMPA and kainate subtype glutamate receptors generated by polyamine-mediated ion channel block , 1995, Neuron.
[7] Z. Pan,et al. Voltage-activated Ca2+ channels and ionotropic GABA receptors localized at axon terminals of mammalian retinal bipolar cells , 2001, Visual Neuroscience.
[8] L. Lagnado,et al. Endogenous Calcium Buffers Regulate Fast Exocytosis in the Synaptic Terminal of Retinal Bipolar Cells , 2002, Neuron.
[9] E. Hartveit. Membrane currents evoked by ionotropic glutamate receptor agonists in rod bipolar cells in the rat retinal slice preparation. , 1996, Journal of neurophysiology.
[10] R. Dacheux,et al. The rod pathway in the rabbit retina: a depolarizing bipolar and amacrine cell , 1986, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[11] H. Wässle,et al. Pharmacology of GABA receptor CI− channels in rat retinal bipolar cells , 1993, Nature.
[12] R. Andrade,et al. T-Type Ca2+ Channels Mediate Neurotransmitter Release in Retinal Bipolar Cells , 2001, Neuron.
[13] H. Wässle,et al. Synaptic localization of NMDA receptor subunits in the rat retina , 2000, The Journal of comparative neurology.
[14] E. Neher. Vesicle Pools and Ca2+ Microdomains: New Tools for Understanding Their Roles in Neurotransmitter Release , 1998, Neuron.
[15] E. Hartveit,et al. Functional organization of cone bipolar cells in the rat retina. , 1997, Journal of neurophysiology.
[16] T. Ichinose,et al. GABA Transporters Regulate Inhibition in the Retina by Limiting GABAC Receptor Activation , 2002, The Journal of Neuroscience.
[17] S A Lipton,et al. Multiple GABA receptor subtypes mediate inhibition of calcium influx at rat retinal bipolar cell terminals , 1995, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[18] Helga Kolb,et al. Rod pathways in the retina of the cat , 1983, Vision Research.
[19] H. Wässle,et al. GABAA and GABAC receptors on mammalian rod bipolar cells , 1998, The Journal of comparative neurology.
[20] R. Nelson,et al. AII amacrine cells quicken time course of rod signals in the cat retina. , 1982, Journal of neurophysiology.
[21] H. Wässle,et al. Morphological and physiological properties of the A17 amacrine cell of the rat retina , 2000, Visual Neuroscience.
[22] Takashi Okada,et al. Ca2+-dependent C− current at the presynaptic terminals of goldfish retinal bipolar cells , 1995, Neuroscience Research.
[23] Helga Kolb,et al. A bistratified amacrine cell and synaptic circuitry in the inner plexiform layer of the retina , 1975, Brain Research.
[24] E. Hartveit,et al. Reciprocal synaptic interactions between rod bipolar cells and amacrine cells in the rat retina. , 1999, Journal of neurophysiology.
[25] S. Bloomfield,et al. Rod Vision: Pathways and Processing in the Mammalian Retina , 2001, Progress in Retinal and Eye Research.
[26] H. Wässle,et al. Immunocytochemical localization of the GABAC receptor ρ subunits in the cat, goldfish, and chicken retina , 1997 .
[27] E. Hartveit,et al. Functional Properties of Spontaneous EPSCs and non‐NMDA Receptors in Rod Amacrine (AII) Cells in the Rat Retina , 2003, The Journal of physiology.
[28] M. Tachibana,et al. Submillisecond Kinetics of Glutamate Release from a Sensory Synapse , 1998, Neuron.
[29] D. Protti,et al. Calcium Currents and Calcium Signaling in Rod Bipolar Cells of Rat Retinal Slices , 1998, The Journal of Neuroscience.
[30] M. Tachibana,et al. Modulation of excitatory synaptic transmission by GABA(C) receptor-mediated feedback in the mouse inner retina. , 2001, Journal of neurophysiology.
[31] S. Bloomfield,et al. Surround inhibition of mammalian AII amacrine cells is generated in the proximal retina , 2000, The Journal of physiology.
[32] H. Wässle,et al. Glutamate Receptors in the Rod Pathway of the Mammalian Retina , 2001, The Journal of Neuroscience.
[33] R. Tsien,et al. Cardiac calcium channels in planar lipid bilayers. L-type channels and calcium-permeable channels open at negative membrane potentials , 1988, The Journal of general physiology.
[34] M. Mayer,et al. Selective modulation of desensitization at AMPA versus kainate receptors by cyclothiazide and concanavalin A , 1993, Neuron.
[35] S. Massey,et al. Confocal Analysis of Reciprocal Feedback at Rod Bipolar Terminals in the Rabbit Retina , 2002, The Journal of Neuroscience.
[36] E. Hartveit,et al. Functional characteristics of non‐NMDA‐type ionotropic glutamate receptor channels in AII amacrine cells in rat retina , 2002, The Journal of physiology.
[37] M. Tachibana,et al. Dihydropyridine-sensitive calcium current mediates neurotransmitter release from bipolar cells of the goldfish retina , 1993, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[38] C. Stevens,et al. The kinetics of transmitter release at the frog neuromuscular junction , 1972, The Journal of physiology.
[39] Jung-Ha Lee,et al. Comparison of the Ca2 + currents induced by expression of three cloned α1 subunits, α1G, α1H and α1I, of low‐voltage‐activated T‐type Ca2 + channels , 1999 .
[40] A. Berntson,et al. Response characteristics and receptive field widths of on‐bipolar cells in the mouse retina , 2000, The Journal of physiology.
[41] A Kaneko,et al. L‐type calcium channels in the axon terminal of mouse bipolar cells , 1998, Neuroreport.
[42] R. Pourcho,et al. A combined golgi and autoradiographic study of (3H)glycine‐accumulating amacrine cells in the cat retina , 1985, The Journal of comparative neurology.
[43] S. Massey,et al. Glutamate receptors at rod bipolar ribbon synapses in the rabbit retina , 2002, The Journal of comparative neurology.
[44] B. Sakmann,et al. Differences in Ca2+ permeability of AMPA-type glutamate receptor channels in neocortical neurons caused by differential GluR-B subunit expression , 1994, Neuron.
[45] R. Dacheux,et al. Excitatory dyad synapse in rabbit retina. , 1987, Proceedings of the National Academy of Sciences of the United States of America.
[46] H. Wässle,et al. Immunocytochemical identification of cone bipolar cells in the rat retina , 1995, The Journal of comparative neurology.
[47] M. Slaughter,et al. 2-amino-4-phosphonobutyric acid: a new pharmacological tool for retina research. , 1981, Science.
[48] G. Matthews,et al. Evidence That Vesicles on the Synaptic Ribbon of Retinal Bipolar Neurons Can Be Rapidly Released , 1996, Neuron.
[49] C. Jahr,et al. Transporters Buffer Synaptically Released Glutamate on a Submillisecond Time Scale , 1997, The Journal of Neuroscience.
[50] H. Wässle,et al. Synaptic clustering of GABAC receptor ρ‐subunits in the rat retina , 1998, The European journal of neuroscience.
[51] R H Masland,et al. Light-evoked responses of bipolar cells in a mammalian retina. , 2000, Journal of neurophysiology.
[52] E. Hartveit,et al. AII (Rod) Amacrine Cells Form a Network of Electrically Coupled Interneurons in the Mammalian Retina , 2002, Neuron.
[53] H. Kolb,et al. A17: a broad-field amacrine cell in the rod system of the cat retina. , 1985, Journal of neurophysiology.
[54] T. Moser,et al. Kinetics of exocytosis and endocytosis at the cochlear inner hair cell afferent synapse of the mouse. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[55] E. Perez-Reyes. Molecular physiology of low-voltage-activated t-type calcium channels. , 2003, Physiological reviews.
[56] Z. Pan,et al. Differential expression of high- and two types of low-voltage-activated calcium currents in rod and cone bipolar cells of the rat retina. , 2000, Journal of neurophysiology.
[57] G. Matthews,et al. Ultrafast Exocytosis Elicited by Calcium Current in Synaptic Terminals of Retinal Bipolar Neurons , 1996, Neuron.
[58] Thomas Voets,et al. Calcium Dependence of Exocytosis and Endocytosis at the Cochlear Inner Hair Cell Afferent Synapse , 2001, Neuron.
[59] L. Lagnado,et al. Synaptic Depression and the Kinetics of Exocytosis in Retinal Bipolar Cells , 2000, The Journal of Neuroscience.