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The voltage-gated sodium channel α-subunit genes comprise a highly conserved gene family. Mutations of three of these genes, SCN1A, SCN2A and SCN8A, are responsible for a significant burden of neurological disease. Recent progress in identification and functional characterization of patient variants is generating new insights and novel approaches to therapy for these devastating disorders. Here we review the basic elements of sodium channel function that are used to characterize patient variants. We summarize a large body of work using global and conditional mouse mutants to characterize the in vivo roles of these channels. We provide an overview of the neurological disorders associated with mutations of the human genes and examples of the effects of patient mutations on channel function. Finally, we highlight therapeutic interventions that are emerging from new insights into mechanisms of sodium channelopathies.
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http://dx.doi.org/10.1038/s41583-020-00418-4 | DOI Listing |
Int J Mol Sci
August 2025
Biophysics Department, School of Medicine, T.C. Marmara University, Istanbul 34854, Turkey.
Cancer has recently been proposed as a type of channelopathy due to the aberrant expression of various ion channels. Voltage-gated potassium (K) channels (VGKCs) are notably upregulated during tumor proliferation, while voltage-gated sodium (Na) channels are predominantly associated with the invasive stage of cancer progression. Among these, the Kv10.
View Article and Find Full Text PDFReports (MDPI)
August 2025
Department of Obstetrics & Gynaecology, Royal North Shore Hospital, Clinical Services Building, 1 Westbourne St, St Leonards, NSW 2065, Australia.
Brugada syndrome (BrS) is a rare inherited cardiac channelopathy, often associated with SCN5A loss-of-function mutations. Clinical presentations range from asymptomatic to malignant arrhythmias and sudden cardiac death. Physiological and pharmacological stressors affecting sodium channel function-such as pyrexia, certain medications, and possibly pregnancy-may unmask or exacerbate arrhythmic risk.
View Article and Find Full Text PDFCell
August 2025
Department of Physiology and Cellular Biophysics, Columbia University, New York, NY, USA. Electronic address:
Ion channels orchestrate electrical signaling in excitable cells. In nature, ion channel function is customized by modulatory proteins that have evolved to fulfill distinct physiological needs. Yet, engineering synthetic modulators that precisely tune ion channel function is challenging.
View Article and Find Full Text PDFExpert Rev Cardiovasc Ther
August 2025
Cardiology and Arrhythmology Clinic, Marche University Hospital, Ancona, Italy.
Neural Regen Res
August 2025
Institute of Visual Neuroscience and Stem Cell Engineering, Wuhan University of Science and Technology, Wuhan, Hubei Province, China.
Voltage-gated sodium channels are essential ionic-conductance pathways in the nervous system, which play an irreplaceable role in modulating neuronal excitability and signal transduction. This review comprehensively analyzes the molecular mechanisms and pathophysiological significance of voltage-gated sodium channels, with particular emphasis on elucidating the molecular-action mechanisms of the distinct subtypes of these channels, including Nav1.1, Nav1.
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