Revisão Revisado por pares

Cellular and molecular biology of voltage-gated sodium channels

1992; American Physiological Society; Volume: 72; Issue: suppl_4 Linguagem: Inglês

10.1152/physrev.1992.72.suppl_4.s15

ISSN

1522-1210

Autores

W A Catterall,

Tópico(s)

Cephalopods and Marine Biology

Resumo

articleCellular and molecular biology of voltage-gated sodium channelsW. A. CatterallW. A. CatterallPublished Online:01 Oct 1992https://doi.org/10.1152/physrev.1992.72.suppl_4.S15MoreSectionsPDF (10 MB)Download PDF ToolsExport citationAdd to favoritesGet permissionsTrack citations ShareShare onFacebookTwitterLinkedInWeChat Previous Back to Top Next Download PDF FiguresReferencesRelatedInformation Cited ByVeratridine modifies the gating of human voltage-gated sodium channel Nav1.727 June 2018 | Acta Pharmacologica Sinica, Vol. 39, No. 11Biogeography of resistance to paralytic shellfish toxins in softshell clam, Mya arenaria (L.), populations along the Atlantic coast of North AmericaAquatic Toxicology, Vol. 202The Science of Local AnesthesiaAnesthesia & Analgesia, Vol. 126, No. 4Investigation of the selectivity of one type of small-molecule inhibitor for three Na v channel isoforms based on the method of computer simulation16 February 2018 | Journal of Biomolecular Structure and Dynamics, Vol. 13A perspective on Na and K channel inactivation12 December 2017 | The Journal of General Physiology, Vol. 150, No. 1Early-onset epileptic encephalopathy with de novo SCN8A mutationEpilepsy Research, Vol. 139Scorpion toxin peptide action at the ion channel subunit levelNeuropharmacology, Vol. 127Computational approaches to understand the adverse drug effect on potassium, sodium and calcium channels for predicting TdP cardiac arrhythmiasJournal of Molecular Graphics and Modelling, Vol. 76Effects of bioactive extracellular compounds and paralytic shellfish toxins produced by Alexandrium minutum on growth and behaviour of juvenile great scallops Pecten maximusAquatic Toxicology, Vol. 184Acute Oral Toxicity of Tetrodotoxin in Mice: Determination of Lethal Dose 50 (LD50) and No Observed Adverse Effect Level (NOAEL)24 February 2017 | Toxins, Vol. 9, No. 3Toxins That Affect Voltage-Gated Sodium Channels26 October 2017Voltage-Gated Na + Channels: Not Just for Conduction1 June 2016 | Cold Spring Harbor Perspectives in Biology, Vol. 8, No. 6Mechanisms Regulating Neuromuscular Junction Development and Function and Causes of Muscle WastingLionel A. 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Rose, Bruce R. Ransom, and Stephen G. Waxman1 December 1997 | Journal of Neurophysiology, Vol. 78, No. 6Transient Ischemia Induces an Early Decrease of Synaptic Transmission in CA1 Neurons of Rat Hippocampus: Electrophysiologic Study in Brain Slices31 August 2016 | Journal of Cerebral Blood Flow & Metabolism, Vol. 17, No. 9Lysophosphatidylcholine Modulates Cardiac INa via Multiple Protein Kinase PathwaysCirculation Research, Vol. 81, No. 3Structure and chromosomal localization of the β2 subunit of the human brain sodium channelNeuroReport, Vol. 8, No. 12Biochemical and Pharmacological Characterization of a Depressant Insect Toxin from the Venom of the Scorpion Buthacus arenicolaEuropean Journal of Biochemistry, Vol. 243, No. 1-2Age-dependent differences in sensitivity to aconitine of rat hippocampal slicesNeuroscience Letters, Vol. 216, No. 1Subunit Stoichiometry of Cyclic Nucleotide-Gated Channels and Effects of Subunit Order on Channel FunctionNeuron, Vol. 16, No. 5Muscarinic Modulation of Sodium Current by Activation of Protein Kinase C in Rat Hippocampal NeuronsNeuron, Vol. 16, No. 5Evidence of Na Current Contribution to the Transient Outward Current in Cardiac Ventricular Myocytes29 June 2016 | Journal of Cardiovascular Pharmacology and Therapeutics, Vol. 1, No. 2Interactions of tetramethrin, fenvalerate and DDT at the sodium channel in rat dorsal root ganglion neuronsBrain Research, Vol. 708, No. 1-2Multiple Domains Contribute to the Distinct Inactivation Properties of Human Heart and Skeletal Muscle Na + ChannelsCirculation Research, Vol. 78, No. 2Structure and function of the β2 subunit of brain sodium channels, a transmembrane glycoprotein with a CAM motifCell, Vol. 83, No. 3Cloning and functional analysis of tipE, a novel membrane protein that enhances drosophila para sodium channel functionCell, Vol. 82, No. 6Veratrine-Stimulated Phosphoinositide Breakdown as an Assay for Local Anesthetic Actions at Na+ ChannelsAnesthesia & Analgesia, Vol. 81, No. 3The relationship of brevetoxin ‘length’ and A-ring functionality to binding and activity in neuronal sodium channelsChemistry & Biology, Vol. 2, No. 8Mutation of a new sodium channel gene, Scn8a, in the mouse mutant ‘motor endplate disease’1 August 1995 | Nature Genetics, Vol. 10, No. 4Evidence for voltage-dependent S4 movement in sodium channelsNeuron, Vol. 15, No. 1In situ hybridization localization of the Na+ channel β1 subunit mRNA in rat CNS neuronsNeuroscience Letters, Vol. 176, No. 1Kinetics of permeation and gating in membrane channelsProgress in Surface Science, Vol. 46, No. 1The effects of alcohols and other surface-active compounds on neuronal sodium channelsProgress in Neurobiology, Vol. 42, No. 5Nicotinic receptor activation facilitates gabaergic neurotransmission in the avian lateral spiriform nucleusNeuroscience, Vol. 59, No. 3Voltage-sensitive Na+ channels increase in number in newborn rat brain after in utero hypoxiaBrain Research, Vol. 635, No. 1-2Bimodal gating of the Na+ channelTrends in Neurosciences, Vol. 17, No. 2Neurotoxins: overview of an emerging research technologyTrends in Neurosciences, Vol. 17, No. 4Molecular Cloning and Functional Analysis of the Promoter of Rat Skeletal Muscle Voltage-Sensitive Sodium Channel Subtype 2 (rSkM2): Evidence for Muscle-Specific Nuclear Protein Binding to the Core PromoterDNA and Cell Biology, Vol. 13, No. 1Pka mediates the effects of monoamine transmitters on the K+ current underlying the slow spike frequency adaptation in hippocampal neuronsNeuron, Vol. 11, No. 6Differential sensitivity of tetrodotoxin-sensitive and tetrodotoxin-resistant sodium channels to the insecticide allethrin in rat dorsal root ganglion neuronsBrain Research, Vol. 627, No. 2Arachidonic acid inhibits sodium currents and synaptic transmission in cultured striatal neuronsNeuron, Vol. 11, No. 4Accessory subunits and sodium channel inactivationCurrent Opinion in Neurobiology, Vol. 3, No. 3Sodium channel regulation in the nervous system: how the action potential keeps in shapeCurrent Opinion in Neurobiology, Vol. 3, No. 3Mechanism of cAMP-dependent modulation of cardiac sodium channel current kinetics.Circulation Research, Vol. 72, No. 4 More from this issue > Volume 72Issue suppl_4October 1992Pages S15-S48 Copyright & PermissionsCopyright © 1992 the American Physiological Societyhttps://doi.org/10.1152/physrev.1992.72.suppl_4.S15PubMed1332090History Published online 1 October 1992 Published in print 1 October 1992 Metrics

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