Synaptic and nonsynaptic contributions to giant ipsps and ectopic spikes induced by 4-aminopyridine in the hippocampus in vitro.
暂无分享,去创建一个
[1] D C Spray,et al. Gap junctional conductance is a simple and sensitive function of intracellular pH. , 1981, Science.
[2] T. Kosaka. Gap junctions between non-pyramidal cell dendrites in the rat hippocampus (CA1 and CA3 regions) , 1983, Brain Research.
[3] T. Kosaka. Neuronal gap junctions in the polymorph layer of the rat dentate gyrus , 1983, Brain Research.
[4] S G Waxman,et al. Maturation of mammalian myelinated fibers: changes in action-potential characteristics following 4-aminopyridine application. , 1983, Journal of neurophysiology.
[5] B. Bollobás. The evolution of random graphs , 1984 .
[6] P. Erdos,et al. On the evolution of random graphs , 1984 .
[7] D. Johnston,et al. 4-Aminopyridine produces epileptiform activity in hippocampus and enhances synaptic excitation and inhibition. , 1987, Journal of neurophysiology.
[8] M. Segal. Repetitive inhibitory postsynaptic potentials evoked by 4-aminopyridine in hippocampal neurons in vitro , 1987, Brain Research.
[9] W. Müller,et al. Inhibitory role of dentate hilus neurons in guinea pig hippocampal slice. , 1990, Journal of neurophysiology.
[10] Synchronized GABAergic IPSPs recorded in the neocortex after blockade of synaptic transmission mediated by excitatory amino acids. , 1991, Journal of neurophysiology.
[11] R. Wong,et al. Excitatory synaptic responses mediated by GABAA receptors in the hippocampus , 1991, Science.
[12] S. Grillner,et al. Presynaptic GABAA and GABAB Receptor‐mediated Phasic Modulation in Axons of Spinal Motor Interneurons , 1991, The European journal of neuroscience.
[13] M. Avoli,et al. Physiology and pharmacology of epileptiform activity induced by 4-aminopyridine in rat hippocampal slices. , 1991, Journal of neurophysiology.
[14] W. Müller,et al. Picrotoxin- and 4-aminopyridine-induced activity in hilar neurons in the guinea pig hippocampal slice. , 1991, Journal of neurophysiology.
[15] M. Avoli,et al. 4-aminopyridine-induced epileptiform activity and a GABA-mediated long- lasting depolarization in the rat hippocampus , 1992, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[16] M. Hines,et al. Axon terminal hyperexcitability associated with epileptogenesis in vitro. I. Origin of ectopic spikes. , 1993, Journal of neurophysiology.
[17] S. Stasheff,et al. Axon terminal hyperexcitability associated with epileptogenesis in vitro. II. Pharmacological regulation by NMDA and GABAA receptors. , 1993, Journal of neurophysiology.
[18] M. Avoli,et al. On the synchronous activity induced by 4-aminopyridine in the CA3 subfield of juvenile rat hippocampus. , 1993, Journal of neurophysiology.
[19] Robert A. Pearce,et al. Physiological evidence for two distinct GABAA responses in rat hippocampus , 1993, Neuron.
[20] D. I. Vaney. The coupling pattern of axon-bearing horizontal cells in the mammalian retina , 1993, Proceedings of the Royal Society of London. Series B: Biological Sciences.
[21] R. Wong,et al. Synchronization of inhibitory neurones in the guinea‐pig hippocampus in vitro. , 1994, The Journal of physiology.
[22] R. Traub,et al. A branching dendritic model of a rodent CA3 pyramidal neurone. , 1994, The Journal of physiology.
[23] I. Forsythe,et al. Direct patch recording from identified presynaptic terminals mediating glutamatergic EPSCs in the rat CNS, in vitro. , 1994, The Journal of physiology.
[24] M. Chesler,et al. Effects of GABA on Axonal Conduction and Extracellular Potassium Activity in the Neonatal Rat Optic Nerve , 1994, Experimental Neurology.
[25] R. Traub,et al. Cellular mechanisms of 4‐aminopyridine‐induced synchronized after‐discharges in the rat hippocampal slice. , 1995, The Journal of physiology.
[26] R. Traub,et al. Synchronized oscillations in interneuron networks driven by metabotropic glutamate receptor activation , 1995, Nature.
[27] U. Heinemann,et al. Serotonin reduces inhibition via 5-HT1A receptors in area CA1 of rat hippocampal slices in vitro , 1995, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[28] G. Buzsáki,et al. Analysis of gamma rhythms in the rat hippocampus in vitro and in vivo. , 1996, The Journal of physiology.
[29] D. Johnston,et al. K+ channel regulation of signal propagation in dendrites of hippocampal pyramidal neurons , 1997, Nature.
[30] L. Benardo,et al. Recruitment of GABAergic inhibition and synchronization of inhibitory interneurons in rat neocortex. , 1997, Journal of neurophysiology.
[31] P. Carlen,et al. Neurotransmitter Modulation of Gap Junctional Communication in the Rat Hippocampus , 1997, The European journal of neuroscience.
[32] K. Kaila,et al. Ionic mechanisms of spontaneous GABAergic events in rat hippocampal slices exposed to 4-aminopyridine. , 1997, Journal of neurophysiology.
[33] J. Voipio,et al. Long-Lasting GABA-Mediated Depolarization Evoked by High-Frequency Stimulation in Pyramidal Neurons of Rat Hippocampal Slice Is Attributable to a Network-Driven, Bicarbonate-Dependent K+ Transient , 1997, The Journal of Neuroscience.
[34] D. Debanne,et al. Action-potential propagation gated by an axonal IA-like K+ conductance in hippocampus , 1997, Nature.
[35] M. Avoli,et al. GABA‐dependent generation of ectopic action potentials in the rat hippocampus , 1998, The European journal of neuroscience.
[36] M. Forti,et al. Synaptic connectivity of distinct hilar interneuron subpopulations. , 1998, Journal of neurophysiology.
[37] B. Robertson,et al. Patch-Clamp Recordings from Cerebellar Basket Cell Bodies and Their Presynaptic Terminals Reveal an Asymmetric Distribution of Voltage-Gated Potassium Channels , 1998, The Journal of Neuroscience.
[38] R. Traub,et al. Electrical coupling underlies high-frequency oscillations in the hippocampus in vitro , 1998, Nature.
[39] N. Vardi,et al. Regional differences in GABA and GAD immunoreactivity in rabbit horizontal cells , 1998, Visual Neuroscience.
[40] R. Traub,et al. Fast Oscillations in Cortical Circuits , 1999 .
[41] S. Hestrin,et al. A network of fast-spiking cells in the neocortex connected by electrical synapses , 1999, Nature.
[42] R. Traub,et al. On the Mechanism of the γ → β Frequency Shift in Neuronal Oscillations Induced in Rat Hippocampal Slices by Tetanic Stimulation , 1999, The Journal of Neuroscience.
[43] B. Connors,et al. Two networks of electrically coupled inhibitory neurons in neocortex , 1999, Nature.
[44] W Zieglgänsberger,et al. Precisely localized LTD in the neocortex revealed by infrared-guided laser stimulation. , 1999, Science.
[45] Y Yarom,et al. Electrotonic Coupling Interacts with Intrinsic Properties to Generate Synchronized Activity in Cerebellar Networks of Inhibitory Interneurons , 1999, The Journal of Neuroscience.
[46] R. Traub,et al. High-frequency population oscillations are predicted to occur in hippocampal pyramidal neuronal networks interconnected by axoaxonal gap junctions , 1999, Neuroscience.
[47] P. Jonas,et al. Distal initiation and active propagation of action potentials in interneuron dendrites. , 2000, Science.
[48] T. Kosaka,et al. Gap Junctions Linking the Dendritic Network of GABAergic Interneurons in the Hippocampus , 2000, The Journal of Neuroscience.
[49] Peter Somogyi,et al. Cell surface domain specific postsynaptic currents evoked by identified GABAergic neurones in rat hippocampus in vitro , 2000, The Journal of physiology.
[50] Roger D. Traub,et al. A Model of High-Frequency Ripples in the Hippocampus Based on Synaptic Coupling Plus Axon–Axon Gap Junctions between Pyramidal Neurons , 2000, The Journal of Neuroscience.
[51] D. Feldmeyer,et al. Connexin expression in electrically coupled postnatal rat brain neurons. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[52] P. Somogyi,et al. Proximally targeted GABAergic synapses and gap junctions synchronize cortical interneurons , 2000, Nature Neuroscience.
[53] Fiona E. N. LeBeau,et al. A model of gamma‐frequency network oscillations induced in the rat CA3 region by carbachol in vitro , 2000, The European journal of neuroscience.