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1.
J Neurosci ; 36(23): 6213-24, 2016 06 08.
Artigo em Inglês | MEDLINE | ID: mdl-27277800

RESUMO

UNLABELLED: Voltage-gated sodium channel (VGSC) ß subunits signal through multiple pathways on multiple time scales. In addition to modulating sodium and potassium currents, ß subunits play nonconducting roles as cell adhesion molecules, which allow them to function in cell-cell communication, neuronal migration, neurite outgrowth, neuronal pathfinding, and axonal fasciculation. Mutations in SCN1B, encoding VGSC ß1 and ß1B, are associated with epilepsy. Autosomal-dominant SCN1B-C121W, the first epilepsy-associated VGSC mutation identified, results in genetic epilepsy with febrile seizures plus (GEFS+). This mutation has been shown to disrupt both the sodium-current-modulatory and cell-adhesive functions of ß1 subunits expressed in heterologous systems. The goal of this study was to compare mice heterozygous for Scn1b-C121W (Scn1b(+/W)) with mice heterozygous for the Scn1b-null allele (Scn1b(+/-)) to determine whether the C121W mutation results in loss-of-function in vivo We found that Scn1b(+/W) mice were more susceptible than Scn1b(+/-) and Scn1b(+/+) mice to hyperthermia-induced convulsions, a model of pediatric febrile seizures. ß1-C121W subunits are expressed at the neuronal cell surface in vivo However, despite this, ß1-C121W polypeptides are incompletely glycosylated and do not associate with VGSC α subunits in the brain. ß1-C121W subcellular localization is restricted to neuronal cell bodies and is not detected at axon initial segments in the cortex or cerebellum or at optic nerve nodes of Ranvier of Scn1b(W/W) mice. These data, together with our previous results showing that ß1-C121W cannot participate in trans-homophilic cell adhesion, lead to the hypothesis that SCN1B-C121W confers a deleterious gain-of-function in human GEFS+ patients. SIGNIFICANCE STATEMENT: The mechanisms underlying genetic epilepsy syndromes are poorly understood. Closing this gap in knowledge is essential to the development of new medicines to treat epilepsy. We have used mouse models to understand the mechanism of a mutation in the sodium channel gene SCN1B linked to genetic epilepsy with febrile seizures plus. We report that sodium channel ß1 subunit proteins encoded by this mutant gene are expressed at the surface of neuronal cell bodies; however, they do not associate with the ion channel complex nor are they transported to areas of the axon that are critical for proper neuronal firing. We conclude that this disease-causing mutation is not simply a loss-of-function, but instead results in a deleterious gain-of-function in the brain.


Assuntos
Epilepsia/genética , Neurônios/fisiologia , Polimorfismo de Nucleotídeo Único/genética , Subunidade beta-1 do Canal de Sódio Disparado por Voltagem/genética , Subunidade beta-1 do Canal de Sódio Disparado por Voltagem/metabolismo , Animais , Animais Recém-Nascidos , Biotinilação , Células Cultivadas , Córtex Cerebral/citologia , Cisteína/genética , Modelos Animais de Doenças , Epilepsia/etiologia , Epilepsia/patologia , Febre/complicações , Regulação da Expressão Gênica no Desenvolvimento/genética , Imunoprecipitação , Camundongos , Camundongos Transgênicos , Estatísticas não Paramétricas , Triptofano/genética
2.
Artigo em Inglês | MEDLINE | ID: mdl-27252364

RESUMO

Voltage-gated sodium channels (VGSCs), composed of a pore-forming α subunit and up to two associated ß subunits, are critical for the initiation of the action potential (AP) in excitable tissues. Building on the monumental discovery and description of sodium current in 1952, intrepid researchers described the voltage-dependent gating mechanism, selectivity of the channel, and general structure of the VGSC channel. Recently, crystal structures of bacterial VGSC α subunits have confirmed many of these studies and provided new insights into VGSC function. VGSC ß subunits, first cloned in 1992, modulate sodium current but also have nonconducting roles as cell-adhesion molecules and function in neurite outgrowth and neuronal pathfinding. Mutations in VGSC α and ß genes are associated with diseases caused by dysfunction of excitable tissues such as epilepsy. Because of the multigenic and drug-resistant nature of some of these diseases, induced pluripotent stem cells and other novel approaches are being used to screen for new drugs and further understand how mutations in VGSC genes contribute to pathophysiology.


Assuntos
Movimento Celular/fisiologia , Mutação , Canais de Sódio Disparados por Voltagem/fisiologia , Potenciais de Ação , Animais , Moléculas de Adesão Celular , Epilepsia/metabolismo , Glicosilação , Humanos , Neoplasias/metabolismo , Processamento de Proteína Pós-Traducional , Peixe-Zebra
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