Properties of synchronous and asynchronous release during pulse train depression in cultured hippocampal neurons.
暂无分享,去创建一个
[1] A. W. Liley,et al. An electrical investigation of effects of repetitive stimulation on mammalian neuromuscular junction. , 1953, Journal of neurophysiology.
[2] D. Hubel. Single unit activity in striate cortex of unrestrained cats , 1959, The Journal of physiology.
[3] B. Katz,et al. Input–Output Relation of a Single Synapse , 1966, Nature.
[4] R. Miledi. Strontium as a Substitute for Calcium in the Process of Transmitter Release at the Neuromuscular Junction , 1966, Nature.
[5] R. Werman,et al. Tetraethylammonium Ions: Effect of Presynaptic Injection on Synaptic Transmission , 1967, Science.
[6] J. O'Keefe,et al. The hippocampus as a spatial map. Preliminary evidence from unit activity in the freely-moving rat. , 1971, Brain research.
[7] R Rahamimoff,et al. Neuromuscular Transmission: Inhibition by Manganese Ions , 1972, Science.
[8] C. Stevens,et al. The kinetics of transmitter release at the frog neuromuscular junction , 1972, The Journal of physiology.
[9] B. Walmsley,et al. Statistical fluctuations in charge transfer at Ia synapses on spinal motoneurones. , 1976, The Journal of physiology.
[10] H. Hatt,et al. Synaptic depression related to presynaptic axon conduction block. , 1976, The Journal of physiology.
[11] M. Segal,et al. Epileptiform activity in microcultures containing small numbers of hippocampal neurons. , 1990, Journal of neurophysiology.
[12] C. Stevens,et al. Excitatory and inhibitory autaptic currents in isolated hippocampal neurons maintained in cell culture. , 1991, Proceedings of the National Academy of Sciences of the United States of America.
[13] H R Lüscher,et al. Depression of postsynaptic potentials by high-frequency stimulation in embryonic motoneurons grown in spinal cord slice cultures. , 1992, Journal of neurophysiology.
[14] T. Südhof,et al. Synaptotagmin I: A major Ca2+ sensor for transmitter release at a central synapse , 1994, Cell.
[15] Y. Goda,et al. Two components of transmitter release at a central synapse. , 1994, Proceedings of the National Academy of Sciences of the United States of America.
[16] H Korn,et al. Excitatory synaptic connections onto rat hippocampal inhibitory cells may involve a single transmitter release site. , 1994, The Journal of physiology.
[17] Frequency-dependent depression of excitatory synaptic transmission is independent of activation of MCPG-sensitive presynaptic metabotropic glutamate receptors in cultured hippocampal neurons. , 1995, Journal of neurophysiology.
[18] WG Regehr,et al. A quantitative analysis of presynaptic calcium dynamics that contribute to short-term enhancement , 1995, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[19] C. Stevens,et al. Estimates for the pool size of releasable quanta at a single central synapse and for the time required to refill the pool. , 1995, Proceedings of the National Academy of Sciences of the United States of America.
[20] C. Stevens,et al. Facilitation and depression at single central synapses , 1995, Neuron.
[21] I. Forsythe,et al. Presynaptic Calcium Current Modulation by a Metabotropic Glutamate Receptor , 1996, Science.
[22] Christian Rosenmund,et al. Definition of the Readily Releasable Pool of Vesicles at Hippocampal Synapses , 1996, Neuron.
[23] M. Dichter,et al. Calcium-dependent Paired-pulse Facilitation of Miniature Epsc Frequency Accompanies Depression of Epscs at Hippocampal Synapses in Culture , 1996 .
[24] W. Regehr,et al. Determinants of the Time Course of Facilitation at the Granule Cell to Purkinje Cell Synapse , 1996, The Journal of Neuroscience.
[25] George J. Augustine,et al. Adaptation of Ca2+-Triggered Exocytosis in Presynaptic Terminals , 1996, Neuron.
[26] C. Lüscher,et al. Control of action potential propagation by intracellular Ca2+ in cultured rat dorsal root ganglion cells. , 1996, The Journal of physiology.
[27] C. Stevens,et al. Heterogeneity of Release Probability, Facilitation, and Depletion at Central Synapses , 1997, Neuron.
[28] H. Markram,et al. The neural code between neocortical pyramidal neurons depends on neurotransmitter release probability. , 1997, Proceedings of the National Academy of Sciences of the United States of America.
[29] Paul Antoine Salin,et al. Use-dependent increases in glutamate concentration activate presynaptic metabotropic glutamate receptors , 1997, Nature.
[30] T. Abe. [Calcium channels]. , 1997, Tanpakushitsu kakusan koso. Protein, nucleic acid, enzyme.
[31] L. Abbott,et al. A Quantitative Description of Short-Term Plasticity at Excitatory Synapses in Layer 2/3 of Rat Primary Visual Cortex , 1997, The Journal of Neuroscience.
[32] A. Thomson. Activity‐dependent properties of synaptic transmission at two classes of connections made by rat neocortical pyramidal axons in vitro , 1997, The Journal of physiology.
[33] P. Mackenzie,et al. High safety factor for action potential conduction along axons but not dendrites of cultured hippocampal and cortical neurons. , 1998, Journal of neurophysiology.
[34] Margaret Barnes-Davies,et al. Inactivation of Presynaptic Calcium Current Contributes to Synaptic Depression at a Fast Central Synapse , 1998, Neuron.
[35] S. Hestrin,et al. Frequency-dependent synaptic depression and the balance of excitation and inhibition in the neocortex , 1998, Nature Neuroscience.
[36] W G Regehr,et al. Calcium Dependence and Recovery Kinetics of Presynaptic Depression at the Climbing Fiber to Purkinje Cell Synapse , 1998, The Journal of Neuroscience.
[37] D. Brody,et al. Preferential Closed-State Inactivation of Neuronal Calcium Channels , 1998, Neuron.
[38] Charles F Stevens,et al. Activity-Dependent Modulation of the Rate at which Synaptic Vesicles Become Available to Undergo Exocytosis , 1998, Neuron.
[39] L. Trussell,et al. Enhancement of Synaptic Efficacy by Presynaptic GABAB Receptors , 1998, Neuron.
[40] R. Fesce. The kinetics of nerve-evoked quantal secretion. , 1999, Philosophical transactions of the Royal Society of London. Series B, Biological sciences.
[41] B. Walmsley,et al. A Novel Presynaptic Inhibitory Mechanism Underlies Paired Pulse Depression at a Fast Central Synapse , 1999, Neuron.
[42] Markus Missler,et al. SV2A and SV2B Function as Redundant Ca2+ Regulators in Neurotransmitter Release , 1999, Neuron.
[43] J. Borst,et al. The Reduced Release Probability of Releasable Vesicles during Recovery from Short-Term Synaptic Depression , 1999, Neuron.
[44] M A Xu-Friedman,et al. Presynaptic strontium dynamics and synaptic transmission. , 1999, Biophysical journal.
[45] X. Wang,et al. Implications of All-or-None Synaptic Transmission and Short-Term Depression beyond Vesicle Depletion: A Computational Study , 2000, The Journal of Neuroscience.
[46] L. Trussell,et al. Inhibitory Transmission Mediated by Asynchronous Transmitter Release , 2000, Neuron.
[47] M A Xu-Friedman,et al. Probing Fundamental Aspects of Synaptic Transmission with Strontium , 2000, The Journal of Neuroscience.
[48] S. Nelson,et al. Multiple forms of short-term plasticity at excitatory synapses in rat medial prefrontal cortex. , 2000, Journal of neurophysiology.
[49] D. Brody,et al. Release-Independent Short-Term Synaptic Depression in Cultured Hippocampal Neurons , 2000, The Journal of Neuroscience.
[50] Ege T. Kavalali,et al. Rapid Reuse of Readily Releasable Pool Vesicles at Hippocampal Synapses , 2000, Neuron.