Model for the pharmacological basis of spontaneous synchronous activity in developing retinas
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[1] B. Frankenhaeuser. The effect of calcium on the myelinated nerve fibre , 1957, The Journal of physiology.
[2] F. Dodge,et al. Co‐operative action of calcium ions in transmitter release at the neuromuscular junction , 1967, The Journal of physiology.
[3] J J Jack,et al. The propagation of transient potentials in some linear cable structures , 1971, The Journal of physiology.
[4] A. Harreveld,et al. 10 – The Extracellular Space in the Vertebrate Central Nervous System , 1972 .
[5] O. Z. Sellinger,et al. ATPase activity in glial cells and in neuronal perikarya of rat cerebral cortex during early postnatal development 1 , 1972, Journal of neurochemistry.
[6] C. Malsburg,et al. A mechanism for producing continuous neural mappings: ocularity dominance stripes and ordered retino , 1976 .
[7] R. Masland. Maturation of function in the developing rabbit retina , 1977, The Journal of comparative neurology.
[8] R H Masland,et al. Development of outer segments and synapses in the rabbit retina , 1977, The Journal of comparative neurology.
[9] G. Somjen. Extracellular potassium in the mammalian central nervous system. , 1979, Annual review of physiology.
[10] G. Rager. The cellular origin of the b‐wave in the electroretinogram— a developmental approach , 1979, The Journal of comparative neurology.
[11] C. Karwoski,et al. Neurons, potassium, and glia in proximal retina of Necturus , 1980, The Journal of general physiology.
[12] C. Nicholson,et al. Ion diffusion modified by tortuosity and volume fraction in the extracellular microenvironment of the rat cerebellum. , 1981, The Journal of physiology.
[13] C. Zucker,et al. Localization of synaptic and nonsynaptic nicotinic‐acetylcholine receptors in the goldfish retina , 1982, The Journal of comparative neurology.
[14] B. Connors,et al. Activity-dependent K+ accumulation in the developing rat optic nerve. , 1982, Science.
[15] W. Almers,et al. Non‐selective conductance in calcium channels of frog muscle: calcium selectivity in a single‐file pore. , 1984, The Journal of physiology.
[16] R. Tsien,et al. Mechanism of ion permeation through calcium channels , 1984, Nature.
[17] M. Ariel,et al. Neurotransmitter inputs to directionally sensitive turtle retinal ganglion cells. , 1985, Journal of neurophysiology.
[18] K. Magleby,et al. Single apamin-blocked Ca-activated K+ channels of small conductance in cultured rat skeletal muscle , 1986, Nature.
[19] J. Stone,et al. Synaptogenesis in the retina of the cat , 1986, Brain Research.
[20] E. A. Schwartz,et al. Depolarization without calcium can release gamma-aminobutyric acid from a retinal neuron. , 1987, Science.
[21] A. Sefton,et al. Cellular degeneration and synaptogenesis in the developing retina of the rat , 1987, The Journal of comparative neurology.
[22] D. McCormick,et al. Post‐natal development of electrophysiological properties of rat cerebral cortical pyramidal neurones. , 1987, The Journal of physiology.
[23] C. Shatz,et al. Dendritic growth and remodeling of cat retinal ganglion cells during fetal and postnatal development , 1988, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[24] M. Stryker,et al. Prenatal tetrodotoxin infusion blocks segregation of retinogeniculate afferents. , 1988, Science.
[25] S. Lipton. Spontaneous release of acetylcholine affects the physiological nicotinic responses of rat retinal ganglion cells in culture , 1988, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[26] L. Maffei,et al. Spontaneous impulse activity of rat retinal ganglion cells in prenatal life. , 1988, Science.
[27] E. Polley,et al. Neurogenesis and Maturation of Cell Morphology in the Development of the Mammalian Retina , 1989 .
[28] C. Koch,et al. Multiple channels and calcium dynamics , 1989 .
[29] A. Winfree. Vortex Action Potentials in Normal Ventricular Muscle a , 1990, Annals of the New York Academy of Sciences.
[30] J. Fohlmeister,et al. Modeling the repetitive firing of retinal ganglion cells , 1990, Brain Research.
[31] L. Maffei,et al. Correlation in the discharges of neighboring rat retinal ganglion cells during prenatal life. , 1990, Proceedings of the National Academy of Sciences of the United States of America.
[32] D. Baylor,et al. Synchronous bursts of action potentials in ganglion cells of the developing mammalian retina. , 1991, Science.
[33] J. Rinzel,et al. Model for synchronization of pancreatic beta-cells by gap junction coupling. , 1991, Biophysical journal.
[34] C. Shatz,et al. Remodeling of retinal ganglion cell dendrites in the absence of action potential activity. , 1991, Journal of neurobiology.
[35] G. Edelman,et al. Spatial signaling in the development and function of neural connections. , 1991, Cerebral cortex.
[36] N. Grzywacz,et al. A model of the directional selectivity circuit in retina: transformations by neurons singly and in concert , 1992 .
[37] L. Galli-Resta,et al. A quantitative model for the regulation of naturally occurring cell death in the developing vertebrate nervous system , 1992, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[38] P. Dayan,et al. A correlational model for the development of disparity selectivity in visual cortex that depends on prenatal and postnatal phases. , 1993, Proceedings of the National Academy of Sciences of the United States of America.
[39] A. Lehmenkühler,et al. Extracellular space parameters in the rat neocortex and subcortical white matter during postnatal development determined by diffusion analysis , 1993, Neuroscience.
[40] Denis Noble,et al. Simulating cardiac sinus and atrial network dynamics on the Connection Machine , 1993 .
[41] I. Skaliora,et al. Prenatal development of excitability in cat retinal ganglion cells: action potentials and sodium currents , 1993, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[42] C. Shatz,et al. Transient period of correlated bursting activity during development of the mammalian retina , 1993, Neuron.
[43] Kenneth D. Miller,et al. The Role of Constraints in Hebbian Learning , 1994, Neural Computation.
[44] Pierre-Yves Burgi,et al. Model Based on Extracellular Potassium for Spontaneous Synchronous Activity in Developing Retinas , 1994, Neural Computation.
[45] KD Miller. A model for the development of simple cell receptive fields and the ordered arrangement of orientation columns through activity-dependent competition between ON- and OFF-center inputs , 1994, The Journal of neuroscience : the official journal of the Society for Neuroscience.