Literature DB >> 15102918

Mice lacking sodium channel beta1 subunits display defects in neuronal excitability, sodium channel expression, and nodal architecture.

Chunling Chen1, Ruth E Westenbroek, Xiaorong Xu, Chris A Edwards, Dorothy R Sorenson, Yuan Chen, Dyke P McEwen, Heather A O'Malley, Vandana Bharucha, Laurence S Meadows, Gabriel A Knudsen, Alex Vilaythong, Jeffrey L Noebels, Thomas L Saunders, Todd Scheuer, Peter Shrager, William A Catterall, Lori L Isom.   

Abstract

Sodium channel beta1 subunits modulate alpha subunit gating and cell surface expression and participate in cell adhesive interactions in vitro. beta1-/- mice appear ataxic and display spontaneous generalized seizures. In the optic nerve, the fastest components of the compound action potential are slowed and the number of mature nodes of Ranvier is reduced, but Na(v)1.6, contactin, caspr 1, and K(v)1 channels are all localized normally at nodes. At the ultrastructural level, the paranodal septate-like junctions immediately adjacent to the node are missing in a subset of axons, suggesting that beta1 may participate in axo-glial communication at the periphery of the nodal gap. Sodium currents in dissociated hippocampal neurons are normal, but Na(v)1.1 expression is reduced and Na(v)1.3 expression is increased in a subset of pyramidal neurons in the CA2/CA3 region, suggesting a basis for the epileptic phenotype. Our results show that beta1 subunits play important roles in the regulation of sodium channel density and localization, are involved in axo-glial communication at nodes of Ranvier, and are required for normal action potential conduction and control of excitability in vivo.

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Year:  2004        PMID: 15102918      PMCID: PMC6729427          DOI: 10.1523/JNEUROSCI.4139-03.2004

Source DB:  PubMed          Journal:  J Neurosci        ISSN: 0270-6474            Impact factor:   6.167


  107 in total

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Review 7.  Sodium channel β subunits: emerging targets in channelopathies.

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8.  The sodium channel accessory subunit Navβ1 regulates neuronal excitability through modulation of repolarizing voltage-gated K⁺ channels.

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Review 10.  Shared cognitive and behavioral impairments in epilepsy and Alzheimer's disease and potential underlying mechanisms.

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