SK Channels Provide a Novel Mechanism for the Control of Frequency Tuning in Electrosensory Neurons
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Leonard Maler | W Hamish Mehaffey | Ray W Turner | Erik Harvey-Girard | L. Maler | R. W. Turner | R. Dunn | W. H. Mehaffey | Robert J Dunn | Lee D Ellis | L. Ellis | É. Harvey-Girard
[1] B. Lancaster,et al. Interaction between synaptic excitation and slow afterhyperpolarization current in rat hippocampal pyramidal cells , 2001, The Journal of physiology.
[2] J. Juranek,et al. A sensory brain map for each behavior? , 1997, Proceedings of the National Academy of Sciences of the United States of America.
[3] P. Sah,et al. SK channels regulate excitatory synaptic transmission and plasticity in the lateral amygdala , 2005, Nature Neuroscience.
[4] E. Marder,et al. Variability, compensation and homeostasis in neuron and network function , 2006, Nature Reviews Neuroscience.
[5] Nicholas J. Priebe,et al. Tuning for Spatiotemporal Frequency and Speed in Directionally Selective Neurons of Macaque Striate Cortex , 2006, The Journal of Neuroscience.
[6] T. Ishii,et al. Mechanism of calcium gating in small-conductance calcium-activated potassium channels , 1998, Nature.
[7] T. Ishii,et al. Determinants of Apamin and d-Tubocurarine Block in SK Potassium Channels* , 1997, The Journal of Biological Chemistry.
[8] Brent Doiron,et al. Parallel Processing of Sensory Input by Bursts and Isolated Spikes , 2004, The Journal of Neuroscience.
[9] R J Dunn,et al. Function of NMDA receptors and persistent sodium channels in a feedback pathway of the electrosensory system. , 2001, Journal of neurophysiology.
[10] Joseph Bastian,et al. Morphological correlates of pyramidal cell adaptation rate in the electrosensory lateral line lobe of weakly electric fish , 1991, Journal of Comparative Physiology A.
[11] N. Lemon,et al. Conditional spike backpropagation generates burst discharge in a sensory neuron. , 2000, Journal of neurophysiology.
[12] Eugene M. Izhikevich,et al. Dynamical Systems in Neuroscience: The Geometry of Excitability and Bursting , 2006 .
[13] Brent Doiron,et al. Persistent Na+ current modifies burst discharge by regulating conditional backpropagation of dendritic spikes. , 2003, Journal of neurophysiology.
[14] K. Miller,et al. Thalamocortical NMDA conductances and intracortical inhibition can explain cortical temporal tuning , 2001, Nature Neuroscience.
[15] H. Zakon,et al. EOD modulations of brown ghost electric fish: JARs, chirps, rises, and dips , 2002, Journal of Physiology-Paris.
[16] Leonard Maler,et al. Central Neuroanatomy of Electrosensory Systems in Fish , 2005 .
[17] B. Doiron,et al. Interval coding. I. Burst interspike intervals as indicators of stimulus intensity. , 2007, Journal of neurophysiology.
[18] Leonard Maler,et al. Morphological and electrophysiological properties of a novel in vitro preparation: the electrosensory lateral line lobe brain slice , 1988, Journal of Comparative Physiology A.
[19] Rodrigo Andrade,et al. SKCa Channels Mediate the Medium But Not the Slow Calcium-Activated Afterhyperpolarization in Cortical Neurons , 2004, The Journal of Neuroscience.
[20] Maurice J Chacron,et al. Receptive Field Organization Determines Pyramidal Cell Stimulus-Encoding Capability and Spatial Stimulus Selectivity , 2002, The Journal of Neuroscience.
[21] Brent Doiron,et al. Deterministic Multiplicative Gain Control with Active Dendrites , 2005, The Journal of Neuroscience.
[22] D. Strøbæk,et al. Specific Enhancement of SK Channel Activity Selectively Potentiates the Afterhyperpolarizing Current IAHP and Modulates the Firing Properties of Hippocampal Pyramidal Neurons* , 2005, Journal of Biological Chemistry.
[23] G. Lynch,et al. A Novel Mechanism for the Facilitation of Theta-Induced Long-Term Potentiation by Brain-Derived Neurotrophic Factor , 2004, The Journal of Neuroscience.
[24] J. Fritz,et al. Dynamics of Precise Spike Timing in Primary Auditory Cortex , 2004, The Journal of Neuroscience.
[25] C A Shumway,et al. Multiple electrosensory maps in the medulla of weakly electric gymnotiform fish. II. Anatomical differences , 1989, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[26] L. Maler,et al. The distribution of acetylcholinesterase and choline acetyl transferase in the cerebellum and posterior lateral line lobe of weakly electric fish (Gymnotidae) , 1981, Brain Research.
[27] Thanos Tzounopoulos,et al. Small Conductance Ca2+-Activated K+Channels Modulate Synaptic Plasticity and Memory Encoding , 2002, The Journal of Neuroscience.
[28] F. Fernandez,et al. Distribution and function of potassium channels in the electrosensory lateral line lobe of weakly electric apteronotid fish , 2006, Journal of Comparative Physiology A.
[29] N. Marrion,et al. Small-Conductance, Calcium-Activated Potassium Channels from Mammalian Brain , 1996, Science.
[30] R. Nicoll,et al. The coupling of neurotransmitter receptors to ion channels in the brain. , 1988, Science.
[31] P. Pedarzani,et al. Differential Distribution of Three Ca2+-Activated K+ Channel Subunits, SK1, SK2, and SK3, in the Adult Rat Central Nervous System , 2000, Molecular and Cellular Neuroscience.
[32] J. Perrier,et al. 5‐HT1A receptors modulate small‐conductance Ca2+‐activated K+ channels , 2004, Journal of neuroscience research.
[33] L. Maler,et al. Oscillatory and burst discharge across electrosensory topographic maps. , 1996, Journal of neurophysiology.
[34] Maurice J Chacron,et al. Feedback and Feedforward Control of Frequency Tuning to Naturalistic Stimuli , 2005, The Journal of Neuroscience.
[35] B. Sabatini,et al. SK channels and NMDA receptors form a Ca2+-mediated feedback loop in dendritic spines , 2005, Nature Neuroscience.
[36] Turner,et al. Oscillatory and burst discharge in the apteronotid electrosensory lateral line lobe , 1999, The Journal of experimental biology.
[37] Joseph Bastian,et al. The physiology and morphology of two types of electrosensory neurons in the weakly electric fishApteronotus leptorhynchus , 1984, Journal of Comparative Physiology A.
[38] K. H. Britten,et al. Power spectrum analysis of bursting cells in area MT in the behaving monkey , 1994, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[39] Anne Hsu,et al. Tuning for spectro-temporal modulations as a mechanism for auditory discrimination of natural sounds , 2005, Nature Neuroscience.
[40] André Longtin,et al. The cellular basis for parallel neural transmission of a high-frequency stimulus and its low-frequency envelope , 2006, Proceedings of the National Academy of Sciences.
[41] W. Newsome,et al. The Variable Discharge of Cortical Neurons: Implications for Connectivity, Computation, and Information Coding , 1998, The Journal of Neuroscience.
[42] Jochen Roeper,et al. Differential Expression of the Small-Conductance, Calcium-Activated Potassium Channel SK3 Is Critical for Pacemaker Control in Dopaminergic Midbrain Neurons , 2001, The Journal of Neuroscience.
[43] L. Maler,et al. Plastic and Nonplastic Pyramidal Cells Perform Unique Roles in a Network Capable of Adaptive Redundancy Reduction , 2004, Neuron.
[44] B. Fakler,et al. Control of Electrical Activity in Central Neurons by Modulating the Gating of Small Conductance Ca2+-activated K+ Channels* , 2001, The Journal of Biological Chemistry.
[45] William R. Softky,et al. The highly irregular firing of cortical cells is inconsistent with temporal integration of random EPSPs , 1993, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[46] S. Salzberg,et al. Non-classical receptive field mediates switch in a sensory neuron ’ s frequency tuning , 2022 .
[47] M. A. Neimark,et al. Neural Correlates of Vibrissa Resonance Band-Pass and Somatotopic Representation of High-Frequency Stimuli , 2004, Neuron.
[48] R J Dunn,et al. N‐methyl‐D‐aspartate receptor 1 mRNA distribution in the central nervous system of the weakly electric fish Apteronotus leptorhynchus , 1997, The Journal of comparative neurology.
[49] P. Shepard,et al. Blockade of SK-type Ca2+-activated K+ channels uncovers a Ca2+-dependent slow afterdepolarization in nigral dopamine neurons. , 1999, Journal of neurophysiology.
[50] Walter Heiligenberg,et al. Labelling of electroreceptive afferents in a gymnotoid fish by intracellular injection of HRP: The mystery of multiple maps , 1982, Journal of comparative physiology.
[51] C E Carr,et al. A time-comparison circuit in the electric fish midbrain. II. Functional morphology , 1986, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[52] J. Storm,et al. Regional Differences in Distribution and Functional Expression of Small-Conductance Ca2+-Activated K+ Channels in Rat Brain , 2002, The Journal of Neuroscience.
[53] R. Cloues,et al. Afterhyperpolarization Regulates Firing Rate in Neurons of the Suprachiasmatic Nucleus , 2003, The Journal of Neuroscience.
[54] Markus Forsberg,et al. Functional morphology , 2004, ICFP '04.
[55] Brent Doiron,et al. Interval coding. II. Dendrite-dependent mechanisms. , 2007, Journal of neurophysiology.
[56] J. Adelman,et al. Regulation of Surface Localization of the Small Conductance Ca2+-activated Potassium Channel, Sk2, through Direct Phosphorylation by cAMP-dependent Protein Kinase* , 2006, Journal of Biological Chemistry.
[57] S. Remy,et al. Proximal Persistent Na+ Channels Drive Spike Afterdepolarizations and Associated Bursting in Adult CA1 Pyramidal Cells , 2005, The Journal of Neuroscience.
[58] K. Reymann,et al. Inhibition of apamin-sensitive calcium dependent potassium channels facilitate the induction of long-term potentiation in the CA1 region of rat hippocampus in vitro , 1998, Neuroscience Letters.
[59] L. Maler,et al. The posterior lateral line lobe of certain gymnotoid fish: Quantitative light microscopy , 1979, The Journal of comparative neurology.
[60] M H Ellisman,et al. TTX-sensitive dendritic sodium channels underlie oscillatory discharge in a vertebrate sensory neuron , 1994, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[61] Distribution of muscarinic receptors in the caudal cerebellum and electrosensory lateral line lobe of gymnotiform fish , 1983, Neuroscience Letters.
[62] C. Carr,et al. A time-comparison circuit in the electric fish midbrain. I. Behavior and physiology , 1986, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[63] W Hamish Mehaffey,et al. Afterpotential Excitability by Delaying a Somatic Depolarizing Current Inactivation Can Increase Cell + Dendritic Na , 2005 .
[64] C. Koch,et al. From stimulus encoding to feature extraction in weakly electric fish , 1996, Nature.
[65] Tetsuro Yamamoto,et al. Ionic mechanisms underlying burst firing of layer III sensorimotor cortical neurons of the cat: an in vitro slice study. , 2001, Journal of neurophysiology.
[66] A. Bruening-Wright,et al. Small Conductance Ca2+-activated K+ Channels and Calmodulin , 2003, Journal of Biological Chemistry.
[67] Y. Yaari,et al. Ionic basis of spike after‐depolarization and burst generation in adult rat hippocampal CA1 pyramidal cells. , 1996, The Journal of physiology.
[68] M. A. MacIver,et al. Prey capture in the weakly electric fish Apteronotus albifrons: sensory acquisition strategies and electrosensory consequences. , 1999, The Journal of experimental biology.
[69] Andreas V. M. Herz,et al. A Universal Model for Spike-Frequency Adaptation , 2003, Neural Computation.
[70] F Gabbiani,et al. Feature Extraction by Burst-Like Spike Patterns in Multiple Sensory Maps , 1998, The Journal of Neuroscience.
[71] J Rinzel,et al. A theoretical basis for large coefficient of variation and bimodality in neuronal interspike interval distributions. , 1983, Journal of theoretical biology.
[72] L. Maler,et al. Inositol 1,4,5‐trisphosphate receptor localization in the brain of a weakly electric fish (Apteronotus leptorhynchus) with emphasis on the electrosensory system , 1995, The Journal of comparative neurology.
[73] Kamran Khodakhah,et al. Somatic and Dendritic Small-Conductance Calcium-Activated Potassium Channels Regulate the Output of Cerebellar Purkinje Neurons , 2003, The Journal of Neuroscience.
[74] L. Maler,et al. Neural architecture of the electrosensory lateral line lobe: adaptations for coincidence detection, a sensory searchlight and frequency-dependent adaptive filtering , 1999, The Journal of experimental biology.
[75] C A Shumway,et al. Multiple electrosensory maps in the medulla of weakly electric gymnotiform fish. I. Physiological differences , 1989, The Journal of neuroscience : the official journal of the Society for Neuroscience.