Role of mossy fiber sprouting and mossy cell loss in hyperexcitability: a network model of the dentate gyrus incorporating cell types and axonal topography.
暂无分享,去创建一个
[1] K J Staley,et al. Membrane properties of dentate gyrus granule cells: comparison of sharp microelectrode and whole-cell recordings. , 1992, Journal of neurophysiology.
[2] P W Gage,et al. Inhibitory post‐synaptic currents in rat hippocampal CA1 neurones. , 1984, The Journal of physiology.
[3] Paul E. Patton,et al. Connection matrix of the hippocampal formation: I. The dentate gyrus , 1995, Hippocampus.
[4] Carson C. Chow,et al. Synchronization and Oscillatory Dynamics in Heterogeneous, Mutually Inhibited Neurons , 1998, Journal of Computational Neuroscience.
[5] P. Jonas,et al. Efficacy and Stability of Quantal GABA Release at a Hippocampal Interneuron–Principal Neuron Synapse , 2000, The Journal of Neuroscience.
[6] Ivan Soltesz,et al. Diversity beyond variance: modulation of firing rates and network coherence by GABAergic subpopulations , 2004, The European journal of neuroscience.
[7] R. Traub,et al. Enhanced NMDA conductance can account for epileptiform activity induced by low Mg2+ in the rat hippocampal slice. , 1994, The Journal of physiology.
[8] J. L. Stringer,et al. The dentate gyrus as a control point for seizures in the hippocampus and beyond. , 1992, Epilepsy research. Supplement.
[9] T. Babb,et al. In contrast to kindled seizures, the frequency of spontaneous epilepsy in the limbic status model correlates with greater aberrant fascia dentata excitatory and inhibitory axon sprouting, and increased staining for N-methyl-d-aspartate, AMPA and GABAA receptors , 1997, Neuroscience.
[10] Arnd Roth,et al. Submillisecond AMPA Receptor-Mediated Signaling at a Principal Neuron–Interneuron Synapse , 1997, Neuron.
[11] H. Scharfman. Characteristics of spontaneous and evoked EPSPs recorded from dentate spiny hilar cells in rat hippocampal slices. , 1993, Journal of neurophysiology.
[12] R. D. Traub,et al. Models of the cellular mechanism underlying propagation of epileptiform activity in the CA2-CA3 region of the hippocampal slice , 1987, Neuroscience.
[13] William B. Levy,et al. Granule cell dendritic spine density in the rat hippocampus varies with spine shape and location , 1985, Neuroscience Letters.
[14] P. Schwartzkroin,et al. Mossy cell axonal projections to the dentate gyrus molecular layer in the rat hippocampal slice , 1992, Hippocampus.
[15] H. Scharfman. Electrophysiological evidence that dentate hilar mossy cells are excitatory and innervate both granule cells and interneurons. , 1995, Journal of neurophysiology.
[16] E. De Schutter,et al. Resonant Synchronization in Heterogeneous Networks of Inhibitory Neurons , 2003, The Journal of Neuroscience.
[17] D. Lowenstein,et al. Selective vulnerability of dentate hilar neurons following traumatic brain injury: a potential mechanistic link between head trauma and disorders of the hippocampus , 1992, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[18] I. Soltesz,et al. Modulation of network behaviour by changes in variance in interneuronal properties , 2002, The Journal of physiology.
[19] R K Wong,et al. Inhibitory control of local excitatory circuits in the guinea‐pig hippocampus. , 1987, The Journal of physiology.
[20] Mathew V. Jones,et al. Pre- and postsynaptic properties of somatic and dendritic inhibition in dentate gyrus , 2002, Neuropharmacology.
[21] T. Kosaka,et al. Three‐dimensional organization of neuronal and glial processes: High voltage electron microscopy , 1994, Microscopy research and technique.
[22] F. Dudek,et al. In vivo intracellular analysis of granule cell axon reorganization in epileptic rats. , 1999, Journal of neurophysiology.
[23] D. Jefferson. The Imaging of Individual Atoms , 1996, Science.
[24] K. Miller,et al. Increased pyramidal excitability and NMDA conductance can explain posttraumatic epileptogenesis without disinhibition: a model. , 1999, Journal of neurophysiology.
[25] H. Beck,et al. The dentate gyrus as a regulated gate for the propagation of epileptiform activity. , 1992, Epilepsy research. Supplement.
[26] N Spruston,et al. Specialized electrophysiological properties of anatomically identified neurons in the hilar region of the rat fascia dentata. , 1998, Journal of neurophysiology.
[27] C. Bruton,et al. The neuropathology of temporal lobe epilepsy , 1988 .
[28] Zachary M Grinspan,et al. Quantal transmission at mossy fibre targets in the CA3 region of the rat hippocampus , 2004, The Journal of physiology.
[29] T L Babb,et al. Influence of the type of initial precipitating injury and at what age it occurs on course and outcome in patients with temporal lobe seizures. , 1995, Journal of neurosurgery.
[30] T. Kosaka,et al. Physiological properties of mouse hippocampal mossy cells , 1998, Neuroreport.
[31] G. Buzsáki,et al. Interneurons of the hippocampus , 1998, Hippocampus.
[32] R. S. Sloviter,et al. Permanently altered hippocampal structure, excitability, and inhibition after experimental status epilepticus in the rat: The “dormant basket cell” hypothesis and its possible relevance to temporal lobe epilepsy , 1991, Hippocampus.
[33] G Buzsáki,et al. Interneurons in the Hippocampal Dentate Gyrus: an In Vivo intracellular Study , 1997, The European journal of neuroscience.
[34] D. Kullmann,et al. Monosynaptic GABAergic Signaling from Dentate to CA3 with a Pharmacological and Physiological Profile Typical of Mossy Fiber Synapses , 2001, Neuron.
[35] Ivan Soltesz,et al. Mossy cells in epilepsy: rigor mortis or vigor mortis? , 2002, Trends in Neurosciences.
[36] Ivan Soltesz,et al. Persistently modified h-channels after complex febrile seizures convert the seizure-induced enhancement of inhibition to hyperexcitability , 2001, Nature Medicine.
[37] Dennis A. Turner,et al. Interneurons of the Dentate–Hilus Border of the Rat Dentate Gyrus: Morphological and Electrophysiological Heterogeneity , 1997, The Journal of Neuroscience.
[38] M. Frotscher,et al. Granule cell hyperexcitability in the early post‐traumatic rat dentate gyrus: the ‘irritable mossy cell’ hypothesis , 2000, The Journal of physiology.
[39] Nicholas T. Carnevale,et al. The NEURON Simulation Environment , 1997, Neural Computation.
[40] D. Amaral. A golgi study of cell types in the hilar region of the hippocampus in the rat , 1978, The Journal of comparative neurology.
[41] P. Schwartzkroin,et al. Axon arbors and synaptic connections of hippocampal mossy cells in the rat in vivo , 1996, The Journal of comparative neurology.
[42] J. Annegers,et al. The risks of epilepsy after traumatic brain injury , 2000, Seizure.
[43] D. Coulter,et al. Chronic Epileptogenic Cellular Alterations in the Limbic System After Status Epilepticus , 1999, Epilepsia.
[44] G. Zhu,et al. B7-H1, a third member of the B7 family, co-stimulates T-cell proliferation and interleukin-10 secretion , 1999, Nature Medicine.
[45] F. Dudek,et al. Neuron loss, granule cell axon reorganization, and functional changes in the dentate gyrus of epileptic kainate‐treated rats , 1997 .
[46] D. Coulter,et al. Epilepsy-associated plasticity in gamma-aminobutyric acid receptor expression, function, and inhibitory synaptic properties. , 2001, International review of neurobiology.
[47] G. Golarai,et al. Assessing the functional significance of mossy fiber sprouting. , 1992, Epilepsy research. Supplement.
[48] Ivan Soltesz,et al. Long‐term hyperexcitability in the hippocampus after experimental head trauma , 2001, Annals of neurology.
[49] D. Johnston,et al. Active properties of neuronal dendrites. , 1996, Annual review of neuroscience.
[50] P. Schwartzkroin,et al. Ultrastructural localization of neurotransmitter immunoreactivity in mossy cell axons and their synaptic targets in the rat dentate gyrus , 1997, Hippocampus.
[51] C. Elger,et al. Loss of dynorphin-mediated inhibition of voltage-dependent Ca2+ currents in hippocampal granule cells isolated from epilepsy patients is associated with mossy fiber sprouting , 1999, Neuroscience.
[52] R. S. Sloviter,et al. The functional organization of the hippocampal dentate gyrus and its relevance to the pathogenesis of temporal lobe epilepsy , 1994, Annals of neurology.
[53] D. Coulter,et al. Selective changes in single cell GABAA receptor subunit expression and function in temporal lobe epilepsy , 1998, Nature Medicine.
[54] G. Cascino,et al. Mossy fiber synaptic reorganization in the epileptic human temporal lobe , 1989, Annals of neurology.
[55] M. Frotscher,et al. Rapid Signaling at Inhibitory Synapses in a Dentate Gyrus Interneuron Network , 2001, The Journal of Neuroscience.
[56] Ivan Soltesz,et al. Post-Traumatic Hyperexcitability Is Not Caused by Impaired Buffering of Extracellular Potassium , 2003, The Journal of Neuroscience.
[57] P. Schwartzkroin,et al. A comparison of rat hippocampal mossy cells and CA3c pyramidal cells. , 1993, Journal of neurophysiology.
[58] A. C. Greenwood,et al. Physiological and Structural Evidence for Hippocampal Involvement in Persistent Seizure Susceptibility after Traumatic Brain Injury , 2001, The Journal of Neuroscience.
[59] J. Nadler,et al. Mossy fiber-granule cell synapses in the normal and epileptic rat dentate gyrus studied with minimal laser photostimulation. , 1999, Journal of neurophysiology.
[60] J. Hankinson. Epilepsy after Non-Missile Head Injuries , 1977 .
[61] C. Houser. Neuronal loss and synaptic reorganization in temporal lobe epilepsy. , 1999, Advances in neurology.
[62] Marom Bikson,et al. Depolarization block of neurons during maintenance of electrographic seizures. , 2003, Journal of neurophysiology.
[63] I. Soltesz,et al. Selective depolarization of interneurons in the early posttraumatic dentate gyrus: involvement of the Na(+)/K(+)-ATPase. , 2000, Journal of neurophysiology.
[64] H. Scharfman,et al. Survival of dentate hilar mossy cells after pilocarpine-induced seizures and their synchronized burst discharges with area CA3 pyramidal cells , 2001, Neuroscience.
[65] William W. Lytton,et al. Computer models of hippocampal circuit changes of the kindling model of epilepsy , 1998, Artif. Intell. Medicine.
[66] G Buzsáki,et al. GABAergic Cells Are the Major Postsynaptic Targets of Mossy Fibers in the Rat Hippocampus , 1998, The Journal of Neuroscience.
[67] M. Sperling,et al. Physiological and anatomical correlates of the human dentate gyrus: consequences or causes of epilepsy. , 1999, Advances in neurology.
[68] P. Schwartzkroin,et al. Kainic acid‐induced mossy fiber sprouting and synapse formation in the dentate gyrus of rats , 2000, Hippocampus.
[69] P. Buckmaster,et al. Axon Sprouting in a Model of Temporal Lobe Epilepsy Creates a Predominantly Excitatory Feedback Circuit , 2002, The Journal of Neuroscience.
[70] I. Soltesz,et al. Febrile seizures in the developing brain result in persistent modification of neuronal excitability in limbic circuits , 1999, Nature Medicine.
[71] C. Houser,et al. Ultrastructural localization of dynorphin in the dentate gyrus in human temporal lobe epilepsy: A study of reorganized mossy fiber synapses , 1999, The Journal of comparative neurology.
[72] D. Coulter. Mossy Fiber Zinc and Temporal Lobe Epilepsy: Pathological Association with Altered “Epileptic”γ‐Aminobutyric Acid A Receptors in Dentate Granule Cells , 2000, Epilepsia.
[73] D. Prince,et al. Electrophysiology of dentate gyrus granule cells. , 1984, Journal of neurophysiology.
[74] Ivan Soltesz,et al. Rapid Deletion of Mossy Cells Does Not Result in a Hyperexcitable Dentate Gyrus: Implications for Epileptogenesis , 2004, The Journal of Neuroscience.
[75] R. Gutiérrez. Activity-dependent expression of simultaneous glutamatergic and GABAergic neurotransmission from the mossy fibers in vitro. , 2002, Journal of neurophysiology.
[76] R. Dingledine,et al. Synaptic input from CA3 pyramidal cells to dentate basket cells in rat hippocampus. , 1995, The Journal of physiology.
[77] I. Soltesz,et al. Instantaneous Perturbation of Dentate Interneuronal Networks by a Pressure Wave-Transient Delivered to the Neocortex , 1997, The Journal of Neuroscience.
[78] R. Dingledine,et al. Spontaneous and synaptic input from granule cells and the perforant path to dentate basket cells in the rat hippocampus , 1995, Hippocampus.
[79] I. Módy,et al. Zinc-Induced Collapse of Augmented Inhibition by GABA in a Temporal Lobe Epilepsy Model , 1996, Science.
[80] J. Magee. Dendritic integration of excitatory synaptic input , 2000, Nature Reviews Neuroscience.
[81] D. Coulter,et al. Brain injury-induced enhanced limbic epileptogenesis: anatomical and physiological parallels to an animal model of temporal lobe epilepsy , 1996, Epilepsy Research.
[82] W Rall,et al. Matching dendritic neuron models to experimental data. , 1992, Physiological reviews.
[83] J. Nadler,et al. The Recurrent Mossy Fiber Pathway of the Epileptic Brain , 2003, Neurochemical Research.
[84] William Holmes,et al. Role of Multiple Calcium and Calcium-Dependent Conductances in Regulation of Hippocampal Dentate Granule Cell Excitability , 1999, Journal of Computational Neuroscience.
[85] F. Dudek,et al. Electrotonic coupling between granule cells of rat dentate gyrus: physiological and anatomical evidence. , 1982, Journal of neurophysiology.
[86] J. Nadler,et al. Short-Term Frequency-Dependent Plasticity at Recurrent Mossy Fiber Synapses of the Epileptic Brain , 2003, The Journal of Neuroscience.
[87] J. Nadler,et al. Synaptically-released zinc inhibits N-methyl-d-aspartate receptor activation at recurrent mossy fiber synapses , 2001, Brain Research.
[88] M Migliore,et al. Computer simulations of morphologically reconstructed CA3 hippocampal neurons. , 1995, Journal of neurophysiology.
[89] T. Sejnowski,et al. Fluctuating synaptic conductances recreate in vivo-like activity in neocortical neurons , 2001, Neuroscience.
[90] P. Buckmaster,et al. Axon arbors and synaptic connections of a vulnerable population of interneurons in the dentate gyrus in vivo , 2002, The Journal of comparative neurology.
[91] M. Frotscher,et al. “Dormant basket cell” hypothesis revisited: Relative vulnerabilities of dentate gyrus mossy cells and inhibitory interneurons after hippocampal status epilepticus in the rat , 2003, The Journal of comparative neurology.
[92] J H Margerison,et al. Epilepsy and the temporal lobes. A clinical, electroencephalographic and neuropathological study of the brain in epilepsy, with particular reference to the temporal lobes. , 1966, Brain : a journal of neurology.
[93] R. Miles,et al. Excitatory synaptic interactions between CA3 neurones in the guinea‐pig hippocampus. , 1986, The Journal of physiology.
[94] M. Dichter,et al. Excitatory synapses from CA3 pyramidal cells onto neighboring pyramidal cells differ from those onto inhibitory interneurons , 2001, Synapse.
[95] P. Goldman-Rakic,et al. Division of labor among distinct subtypes of inhibitory neurons in a cortical microcircuit of working memory. , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[96] H. Scharfman. Dentate hilar cells with dendrites in the molecular layer have lower thresholds for synaptic activation by perforant path than granule cells , 1991, The Journal of neuroscience : the official journal of the Society for Neuroscience.