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Regulation of persistent Na current by interactions between beta subunits of voltage-gated Na channels.

作者信息

Aman Teresa K, Grieco-Calub Tina M, Chen Chunling, Rusconi Raffaella, Slat Emily A, Isom Lori L, Raman Indira M

机构信息

Interdepartmental Neuroscience Program, Northwestern University, Evanston, Illinois 60208, USA.

出版信息

J Neurosci. 2009 Feb 18;29(7):2027-42. doi: 10.1523/JNEUROSCI.4531-08.2009.


DOI:10.1523/JNEUROSCI.4531-08.2009
PMID:19228957
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2667244/
Abstract

The beta subunits of voltage-gated Na channels (Scnxb) regulate the gating of pore-forming alpha subunits, as well as their trafficking and localization. In heterologous expression systems, beta1, beta2, and beta3 subunits influence inactivation and persistent current in different ways. To test how the beta4 protein regulates Na channel gating, we transfected beta4 into HEK (human embryonic kidney) cells stably expressing Na(V)1.1. Unlike a free peptide with a sequence from the beta4 cytoplasmic domain, the full-length beta4 protein did not block open channels. Instead, beta4 expression favored open states by shifting activation curves negative, decreasing the slope of the inactivation curve, and increasing the percentage of noninactivating current. Consequently, persistent current tripled in amplitude. Expression of beta1 or chimeric subunits including the beta1 extracellular domain, however, favored inactivation. Coexpressing Na(V)1.1 and beta4 with beta1 produced tiny persistent currents, indicating that beta1 overcomes the effects of beta4 in heterotrimeric channels. In contrast, beta1(C121W), which contains an extracellular epilepsy-associated mutation, did not counteract the destabilization of inactivation by beta4 and also required unusually large depolarizations for channel opening. In cultured hippocampal neurons transfected with beta4, persistent current was slightly but significantly increased. Moreover, in beta4-expressing neurons from Scn1b and Scn1b/Scn2b null mice, entry into inactivated states was slowed. These data suggest that beta1 and beta4 have antagonistic roles, the former favoring inactivation, and the latter favoring activation. Because increased Na channel availability may facilitate action potential firing, these results suggest a mechanism for seizure susceptibility of both mice and humans with disrupted beta1 subunits.

摘要

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本文引用的文献

[1]
Functional properties and differential neuromodulation of Na(v)1.6 channels.

Mol Cell Neurosci. 2008-8

[2]
Voltage-gated Na+ channel beta1 subunit-mediated neurite outgrowth requires Fyn kinase and contributes to postnatal CNS development in vivo.

J Neurosci. 2008-3-19

[3]
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J Neurosci. 2007-10-24

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J Neurosci. 2007-10-10

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J Mol Cell Cardiol. 2007-11

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Biochem Biophys Res Commun. 2007-9-14

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J Neurosci. 2006-10-25

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Brain. 2007-1

[9]
Sodium channel beta4 subunit: down-regulation and possible involvement in neuritic degeneration in Huntington's disease transgenic mice.

J Neurochem. 2006-7

[10]
Neonatal epilepsy syndromes and GEFS+: mechanistic considerations.

Epilepsia. 2005

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