Dark‐ and light‐induced changes in coupling between horizontal cells in mammalian retina
暂无分享,去创建一个
[1] S. Bloomfield,et al. A comparison of receptive-field and tracer-coupling size of amacrine and ganglion cells in the rabbit retina , 1997, Visual Neuroscience.
[2] S. Bloomfield,et al. Light-induced modulation of coupling between AII amacrine cells in the rabbit retina , 1997, Visual Neuroscience.
[3] R. Weiler,et al. Effects of Nitric Oxide on the Horizontal Cell Network and Dopamine Release in the Carp Retina , 1997, Vision Research.
[4] D. Mcmahon,et al. Modulation of hybrid bass retinal gap junctional channel gating by nitric oxide. , 1997, The Journal of physiology.
[5] J. Dowling,et al. Modulation of endogenous dopamine release in the fish retina by light and prolonged darkness , 1997, Visual Neuroscience.
[6] H. Spekreijse,et al. The Size of the horizontal cell receptive fields adapts to the stimulus in the light adapted goldfish retina , 1996, Vision Research.
[7] S. Bloomfield,et al. A comparison of receptive field and tracer coupling size of horizontal cells in the rabbit retina , 1995, Visual Neuroscience.
[8] J. Dowling,et al. Dark-suppression and light-sensitization of horizontal cell responses in the hybrid bass retina , 1995, Visual Neuroscience.
[9] I. Perlman,et al. Receptive-field size of L1 horizontal cells in the turtle retina: effects of dopamine and background light. , 1994, Journal of neurophysiology.
[10] D. McMahon,et al. Modulation of gap-junction channel gating at zebrafish retinal electrical synapses. , 1994, Journal of neurophysiology.
[11] R. Weiler,et al. pH-gated dopaminergic modulation of horizontal cell gap junctions in mammalian retina , 1994, Proceedings of the Royal Society of London. Series B: Biological Sciences.
[12] S. Mangel,et al. Activation of a D2 receptor increases electrical coupling between retinal horizontal cells by inhibiting dopamine release. , 1992, Proceedings of the National Academy of Sciences of the United States of America.
[13] Joseph C. Besharse,et al. Is dopamine a light-adaptive or a dark-adaptive modulator in retina? , 1992, Neurochemistry International.
[14] D. Berson,et al. A method for reliable and permanent intracellular staining of retinal ganglion cells , 1992, Journal of Neuroscience Methods.
[15] A. Ball,et al. Background illumination reduces horizontal cell receptive-field size in both normal and 6-hydroxydopamine-lesioned goldfish retinas , 1991, Visual Neuroscience.
[16] J. Dowling,et al. Effects of light stimuli on the release of dopamine from interplexiform cells in the white perch retina , 1991, Visual Neuroscience.
[17] S. Mangel,et al. Analysis of the horizontal cell contribution to the receptive field surround of ganglion cells in the rabbit retina. , 1991, The Journal of physiology.
[18] J. McReynolds,et al. The relationship between light, dopamine release and horizontal cell coupling in the mudpuppy retina. , 1991, The Journal of physiology.
[19] Paul Witkovsky,et al. Chapter 10 Functional roles of dopamine in the vertebrate retina , 1991 .
[20] P. Witkovsky,et al. Slow light and dark adaptation of horizontal cells in the Xenopus retina: A role for endogenous dopamine , 1990, Visual Neuroscience.
[21] J. Dowling,et al. Dopamine modulates the kinetics of ion channels gated by excitatory amino acids in retinal horizontal cells. , 1990, Proceedings of the National Academy of Sciences of the United States of America.
[22] E. A. Schwartz,et al. Modulation of an electrical synapse between solitary pairs of catfish horizontal cells by dopamine and second messengers. , 1989, The Journal of physiology.
[23] M. Piccolino,et al. Involvement of D1 and D2 Dopamine Receptors in the Control of Horizontal Cell Electrical Coupling in the Turtle Retina , 1989, The European journal of neuroscience.
[24] H Spekreijse,et al. Lateral feedback from monophasic horizontal cells to cones in carp retina. I. Experiments , 1989, The Journal of general physiology.
[25] H. Spekreijse,et al. Lateral feedback from monophasic horizontal cells to cones in carp retina. II. A quantitative model , 1989, The Journal of general physiology.
[26] K. Tornqvist,et al. Modulation of cone horizontal cell activity in the teleost fish retina. III. Effects of prolonged darkness and dopamine on electrical coupling between horizontal cells , 1988, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[27] K. Tornqvist,et al. Modulation of cone horizontal cell activity in the teleost fish retina. II. Role of interplexiform cells and dopamine in regulating light responsiveness , 1988, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[28] K. Tornqvist,et al. Modulation of cone horizontal cell activity in the teleost fish retina. I. Effects of prolonged darkness and background illumination on light responsiveness , 1988, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[29] R. Wurtman,et al. Release of endogenous dopamine from the superfused rabbit retina in vitro: effect of light stimulation , 1988, Brain Research.
[30] R. Weiler,et al. Glutamate and dopamine modulate synaptic plasticity in horizontal cell dendrites of fish retina , 1988, Neuroscience Letters.
[31] A. Ball,et al. Dopaminergic regulation of horizontal cell gap junction particle density in goldfish retina , 1987, The Journal of comparative neurology.
[32] J. Dowling,et al. The interplexiform–horizontal cell system of the fish retina: effects of dopamine, light stimulation and time in the dark , 1987, Proceedings of the Royal Society of London. Series B. Biological Sciences.
[33] 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.
[34] J. Dowling,et al. Responsiveness and receptive field size of carp horizontal cells are reduced by prolonged darkness and dopamine. , 1985, Science.
[35] C. W. Oyster,et al. Morphology and distribution of tyrosine hydroxylase-like immunoreactive neurons in the cat retina. , 1985, Proceedings of the National Academy of Sciences of the United States of America.
[36] Ingrid Holmbren-Taylor. Ultrastructure and synapses of the [3H]dopamine-accumulating neurons in the retina of the rabbit. , 1982 .
[37] R. Dacheux,et al. Horizontal cells in the retina of the rabbit , 1982, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[38] S. Bloomfield,et al. A physiological and morphological study of the horizontal cell types of the rabbit retina , 1982, The Journal of comparative neurology.
[39] A. Ames,et al. In Vitro Retina as an Experimental Model of the Central Nervous System , 1981, Journal of neurochemistry.
[40] R. Dacheux,et al. An intracellular electrophysiological study of the ontogeny of functional synapses in the rabbit retina. I. Receptors, horizontal, and bipolar cells , 1981, The Journal of comparative neurology.
[41] P. Marchiafava,et al. Horizontal cells influence membrane potential of bipolar cells in the retina of the turtle , 1978, Nature.
[42] F. M. D. Monasterio. Spectral interactions in horizontal and ganglion cells of the isolated and arterially-perfused rabbit retina , 1978, Brain Research.
[43] R. Nelson,et al. Cat cones have rod input: A comparison of the response properties of cones and horizontal cell bodies in the retina of the cat , 1977, The Journal of comparative neurology.
[44] J. Adams,et al. Technical considerations on the use of horseradish peroxidase as a neuronal marker , 1977, Neuroscience.
[45] T. Lamb,et al. Spatial properties of horizontal cell responses in the turtle retina. , 1976, The Journal of physiology.
[46] P Gouras,et al. Horizontal cells in cat retina with independent dendritic systems. , 1975, Science.
[47] B. Boycott,et al. Synaptic connexions made by horizontal cells within the outer plexiform layer of the retina of the cat and the rabbit , 1974, Proceedings of the Royal Society of London. Series B. Biological Sciences.
[48] K I Naka,et al. Dogfish ganglion cell discharge resulting from extrinsic polarization of the horizontal cells , 1972, The Journal of physiology.
[49] P. W. Nye,et al. Role of horizontal cells in organization of the catfish retinal receptive field. , 1971, Journal of neurophysiology.
[50] A Kaneko,et al. Electrical connexions between horizontal cells in the dogfish retina , 1971, The Journal of physiology.
[51] A. Kaneko. Physiological and morphological identification of horizontal, bipolar and amacrine cells in goldfish retina , 1970, The Journal of physiology.
[52] K. Naka,et al. The generation and spread of S‐potentials in fish (Cyprinidae) , 1967, The Journal of physiology.
[53] T. Tomita. Electrophysiological study of the mechanisms subserving color coding in the fish retina. , 1965, Cold Spring Harbor symposia on quantitative biology.