Computational Model of Touch Sensory Cells (T Cells) of the Leech: Role of the Afterhyperpolarization (AHP) in Activity-Dependent Conduction Failure
暂无分享,去创建一个
Douglas A. Baxter | John H. Byrne | Evyatar Av-Ron | Yidao Cai | Enrico Cataldo | D. A. Baxter | Marcello Brunelli | J. Byrne | E. Cataldo | E. Av-Ron | Y. Cai | M. Brunelli | Yidao Cai | Evyatar Av-Ron
[1] I. Cooke,et al. Inhibition of Impulse Activity in a Sensory Neuron by an Electrogenic Pump , 1971, The Journal of general physiology.
[2] I Segev,et al. Untangling dendrites with quantitative models. , 2000, Science.
[3] C. Koch,et al. Multiple channels and calcium dynamics , 1989 .
[4] K. J. Muller,et al. Laser microbeam axotomy and conduction block show that electrical transmission at a central synapse is distributed at multiple contacts. , 1989, Journal of neurobiology.
[5] P. Grafe,et al. Activity‐dependent excitability changes in normal and demyelinated rat spinal root axons. , 1985, The Journal of physiology.
[6] D. A. Baxter,et al. Simulator for neural networks and action potentials: description and application. , 1994, Journal of neurophysiology.
[7] S. Stoney. Limitations on impulse conduction at the branch point of afferent axons in frog dorsal root ganglion , 2004, Experimental Brain Research.
[8] Ranulfo Romo,et al. Presynaptic inhibition and neural control , 1998 .
[9] Michael A. Arbib,et al. The handbook of brain theory and neural networks , 1995, A Bradford book.
[10] E. Marder,et al. Multiple modes of a conditional neural oscillator , 2004, Biological Cybernetics.
[11] S Hochstein,et al. Theoretical analysis of parameters leading to frequency modulation along an inhomogeneous axon. , 1976, Journal of neurophysiology.
[12] B. Gustafsson. Afterhyperpolarization and the control of repetitive firing in spinal neurones of the cat. , 1974, Acta physiologica Scandinavica. Supplementum.
[13] H. E. Torebjörk,et al. Action potential conduction in the terminal arborisation of nociceptive C‐fibre afferents , 2003, The Journal of physiology.
[14] D. Baylor,et al. After‐effects of nerve impulses on signalling in the central nervous system of the leech , 1969, The Journal of physiology.
[15] P. Schwindt,et al. Long-lasting reduction of excitability by a sodium-dependent potassium current in cat neocortical neurons. , 1989, Journal of neurophysiology.
[16] M. Westerfield,et al. Temperature-sensitive conduction failure at axon branch points. , 1978, Journal of neurophysiology.
[17] I. Glynn,et al. The sodium pump. , 1975, Annual review of physiology.
[18] V. Torre. The contribution of the electrogenic sodium—potassium pump to the electrical activity of toad rods , 1982, The Journal of physiology.
[19] N. Spruston,et al. Activity-dependent action potential invasion and calcium influx into hippocampal CA1 dendrites. , 1995, Science.
[20] P J Hunter,et al. Analytical models of propagation in excitable cells. , 1975, Progress in biophysics and molecular biology.
[21] J S Shiner,et al. Simulation of action potential propagation in complex terminal arborizations. , 1990, Biophysical journal.
[22] J. Nicholls,et al. Conductance changes, an electrogenic pump and the hyperpolarization of leech neurones following impulses , 1973, The Journal of physiology.
[23] D. McCormick,et al. Ionic Mechanisms Underlying Repetitive High-Frequency Burst Firing in Supragranular Cortical Neurons , 2000, The Journal of Neuroscience.
[24] P. De Weer,et al. Electrogenic Sodium Pump in Squid Giant Axon , 1973, Science.
[25] Idan Segev,et al. Methods in Neuronal Modeling , 1988 .
[26] P. Hochstrate,et al. Voltage-dependent Ca2+ influx into identified leech neurones , 1997, Brain Research.
[27] G. Demontis,et al. Serotonin and Retzius cell depress the hyperpolarization following impulses of leech touch cell , 1984, Brain Research.
[28] J M Bekkers,et al. Apical Dendritic Location of Slow Afterhyperpolarization Current in Hippocampal Pyramidal Neurons: Implications for the Integration of Long-Term Potentiation , 1996, The Journal of Neuroscience.
[29] D Contreras,et al. Mechanisms of long‐lasting hyperpolarizations underlying slow sleep oscillations in cat corticothalamic networks. , 1996, The Journal of physiology.
[30] D. McCormick,et al. Functional and ionic properties of a slow afterhyperpolarization in ferret perigeniculate neurons in vitro. , 1998, Journal of neurophysiology.
[31] Nicholas T. Carnevale,et al. ModelDB: A Database to Support Computational Neuroscience , 2004, Journal of Computational Neuroscience.
[32] R. Thomas,et al. Electrogenic sodium pump in nerve and muscle cells. , 1972, Physiological reviews.
[33] W. B. Adams,et al. Na+, K+ and Ca2+ currents in identified leech neurones in culture. , 1989, The Journal of experimental biology.
[34] D. Smith,et al. Mechanisms of action potential propagation failure at sites of axon branching in the crayfish. , 1980, The Journal of physiology.
[35] J Rinzel,et al. Mechanisms for Nonuniform Propagation Along Excitable Cables , 1990, Annals of the New York Academy of Sciences.
[36] E R Macagno,et al. Conduction block silences parts of a chemical synapse in the leech central nervous system. , 1987, The Journal of physiology.
[37] P. Wall. Do nerve impulses penetrate terminal arborizations? A pre-presynaptic control mechanism , 1995, Trends in Neurosciences.
[38] D. Debanne,et al. Gating of action potential propagation by an axonal A-like potassium conductance in the hippocampus: A new type of non-synaptic plasticity , 1999, Journal of Physiology-Paris.
[39] S. A. Raymond. Effects of nerve impulses on threshold of frog sciatic nerve fibres. , 1979, The Journal of physiology.
[40] V. Krauthamer,et al. Effects of high-rate electrical stimulation upon firing in modelled and real neurons , 2002, Medical and Biological Engineering and Computing.
[41] C. Lüscher,et al. Action potential propagation through embryonic dorsal root ganglion cells in culture. I. Influence of the cell morphology on propagation properties. , 1994, Journal of neurophysiology.
[42] B. Burrell,et al. Action potential reflection and failure at axon branch points cause stepwise changes in EPSPs in a neuron essential for learning. , 2000, Journal of neurophysiology.
[43] C. Lüscher,et al. Action potential propagation through embryonic dorsal root ganglion cells in culture. II. Decrease of conduction reliability during repetitive stimulation. , 1994, Journal of neurophysiology.
[44] B. Gustafsson,et al. Regulation of repetitive firing in motoneurones by the afterhyperpolarization conductance. , 1971, Brain research.
[45] Wendy W. Wu,et al. Watermaze learning enhances excitability of CA1 pyramidal neurons. , 2003, Journal of neurophysiology.
[46] M. Migliore. Modeling the attenuation and failure of action potentials in the dendrites of hippocampal neurons. , 1996, Biophysical journal.
[47] A. Mar,et al. Modulation of Conduction Block in Leech Mechanosensory Neurons , 1996, The Journal of Neuroscience.
[48] J. Jing,et al. Regulation of Spike Initiation and Propagation in anAplysia Sensory Neuron: Gating-In via Central Depolarization , 2003, The Journal of Neuroscience.
[49] M. Brunelli,et al. Octopamine and Leydig cell stimulation depress the afterhyperpolarization in touch sensory neurons of the leech , 1995, Neuroscience.
[50] S M Thompson,et al. Activation of electrogenic sodium pump in hippocampal CA1 neurons following glutamate-induced depolarization. , 1986, Journal of neurophysiology.
[51] John G. Nicholls,et al. Long-Lasting Hyperpolarization after Activity of Neurons in Leech Central Nervous System , 1968, Science.
[52] H. Swadlow,et al. Modulation of impulse conduction along the axonal tree. , 1980, Annual review of biophysics and bioengineering.
[53] Christof Koch,et al. Biophysics of Computation: Information Processing in Single Neurons (Computational Neuroscience Series) , 1998 .
[54] B. Zipser,et al. Mannose-specific recognition mediates two aspects of synaptic growth of leech sensory afferents: collateral branching and proliferation of synaptic vesicle clusters. , 1998, Developmental biology.
[55] S G Waxman,et al. Regional differentiation of the axon: a review with special reference to the concept of the multiplex neuron. , 1972, Brain research.
[56] X. Gu. Effect of conduction block at axon bifurcations on synaptic transmission to different postsynaptic neurones in the leech. , 1991, The Journal of physiology.
[57] J S Shiner,et al. Computation of action potential propagation and presynaptic bouton activation in terminal arborizations of different geometries. , 1990, Biophysical journal.
[58] W. Rall. Branching dendritic trees and motoneuron membrane resistivity. , 1959, Experimental neurology.
[59] Alwyn C. Scott,et al. Neuroscience: A Mathematical Primer , 2002 .
[60] I Segev,et al. Computer study of presynaptic inhibition controlling the spread of action potentials into axonal terminals. , 1990, Journal of neurophysiology.
[61] D. Alkon,et al. Classical conditioning reduces amplitude and duration of calcium-dependent afterhyperpolarization in rabbit hippocampal pyramidal cells. , 1989, Journal of neurophysiology.
[62] Idan Segev,et al. Compartmental models of complex neurons , 1989 .
[63] D. van Essen. The contribution of membrane hyperpolarization to adaptation and conduction block in sensory neurones of the leech , 1973, The Journal of physiology.
[64] S. Chiu,et al. Computer model for action potential propagation through branch point in myelinated nerves. , 2001, Journal of neurophysiology.
[65] D. Baylor,et al. Specific modalities and receptive fields of sensory neurons in CNS of the leech. , 1968, Journal of neurophysiology.
[66] W. Schlue. Sensory neurons in leech central nervous system: changes in potassium conductance an excitation threshold. , 1976, Journal of neurophysiology.
[67] U J McMahan,et al. The shapes of sensory and motor neurones and the distribution of their synapses in ganglia of the leech: a study using intracellular injection of horseradish peroxidase , 1976, Proceedings of the Royal Society of London. Series B. Biological Sciences.
[68] G. T. Coleman,et al. Impulse propagation over tactile and kinaesthetic sensory axons to central target neurones of the cuneate nucleus in cat , 2003, The Journal of physiology.
[69] S. Baccus,et al. Synaptic facilitation by reflected action potentials: enhancement of transmission when nerve impulses reverse direction at axon branch points. , 1998, Proceedings of the National Academy of Sciences of the United States of America.
[70] I Segev,et al. Propagation of action potentials along complex axonal trees. Model and implementation. , 1991, Biophysical journal.
[71] I. Parnas,et al. Differential conduction block in branches of a bifurcating axon. , 1979, The Journal of physiology.
[72] J. Byrne. Analysis of ionic conductance mechanisms in motor cells mediating inking behavior in Aplysia californica. , 1980, Journal of neurophysiology.
[73] L. L. Stockbridge,et al. Differential conduction at axonal bifurcations. I. Effect of electrotonic length. , 1988, Journal of neurophysiology.
[74] R. Mozzachiodi,et al. Activity-dependent increase of the AHP amplitude in T sensory neurons of the leech. , 2002, Journal of neurophysiology.
[75] I Segev,et al. A mathematical model for conduction of action potentials along bifurcating axons. , 1979, The Journal of physiology.
[76] M. Brunelli,et al. Cyclic AMP mediates inhibition of the Na(+)‐K+ electrogenic pump by serotonin in tactile sensory neurones of the leech. , 1993, The Journal of physiology.
[77] K. Yau,et al. Receptive fields, geometry and conduction block of sensory neurones in the central nervous system of the leech. , 1976, The Journal of physiology.
[78] W Rall,et al. Changes of action potential shape and velocity for changing core conductor geometry. , 1974, Biophysical journal.
[79] P. Sokolove. Computer simulation of after-inhibition in crayfish slowly adapting stretch receptor neuron. , 1972, Biophysical journal.
[80] V. Torre,et al. Coding and adaptation during mechanical stimulation in the leech nervous system , 2000, The Journal of physiology.
[81] R. Mozzachiodi,et al. Caulerpenyne, a toxin from the seaweed Caulerpa taxifolia, depresses afterhyperpolarization in invertebrate neurons , 2001, Neuroscience.
[82] S. Grillner,et al. Role of apamin-sensitive k(ca) channels for reticulospinal synaptic transmission to motoneuron and for the afterhyperpolarization. , 2002, Journal of neurophysiology.
[83] Maria V. Sanchez-Vives,et al. Cellular Mechanisms of Long-Lasting Adaptation in Visual Cortical Neurons In Vitro , 2000, The Journal of Neuroscience.
[84] D. Debanne,et al. Axonal propagation: does the spike stop here? , 2003, The Journal of physiology.
[85] P. Läuger,et al. Electrogenic ion pumps , 1991 .
[86] C. Koch,et al. Effect of geometrical irregularities on propagation delay in axonal trees. , 1991, Biophysical journal.
[87] 真弘 大谷,et al. Biophysics of Computation Information Processing in Single Neuron , 2004 .
[88] E. Marder,et al. Activity-dependent regulation of conductances in model neurons. , 1993, Science.
[89] M. D. Goldfinger,et al. Computation of high safety factor impulse propagation at axonal branch points , 2000, Neuroreport.
[90] N. Stockbridge. Differential conduction at axonal bifurcations. II. Theoretical basis. , 1988, Journal of neurophysiology.
[91] H. Hatt,et al. Synaptic depression related to presynaptic axon conduction block. , 1976, The Journal of physiology.
[92] J. Angstadt,et al. Synchronized oscillatory activity in leech neurons induced by calcium channel blockers. , 1991, Journal of neurophysiology.
[93] W. Schlue. Current excitation threshold in sensory neurons of leech central nervous system. , 1976, Journal of neurophysiology.
[94] A. Hodgkin,et al. The after‐effects of impulses in the giant nerve fibres of Loligo , 1956, The Journal of physiology.
[95] D. Bruns,et al. Quantal Release of Serotonin , 2000, Neuron.
[96] J. Byrne,et al. Quantitative aspects of ionic conductance mechanisms contributing to firing pattern of motor cells mediating inking behavior in Aplysia californica. , 1980, Journal of neurophysiology.
[97] B. Zipser,et al. Extracellularly applied horseradish peroxidase increases the number of dense core vesicles in leech sensory neurons , 2003, Brain Research.
[98] Idan Segev,et al. Axons as computing devices: Basic insights gained from models , 1999, Journal of Physiology-Paris.