Literature DB >> 18632931

Self-limited hyperexcitability: functional effect of a familial hemiplegic migraine mutation of the Nav1.1 (SCN1A) Na+ channel.

Sandrine Cestèle1, Paolo Scalmani, Raffaella Rusconi, Benedetta Terragni, Silvana Franceschetti, Massimo Mantegazza.   

Abstract

Familial hemiplegic migraine (FHM) is an autosomal dominant inherited subtype of severe migraine with aura. Mutations causing FHM (type 3) have been identified in SCN1A, the gene encoding neuronal voltage-gated Na(v)1.1 Na(+) channel alpha subunit, but functional studies have been done using the cardiac Na(v)1.5 isoform, and the observed effects were similar to those of some epileptogenic mutations. We studied the FHM mutation Q1489K by transfecting tsA-201 cells and cultured neurons with human Na(v)1.1. We show that the mutation has effects on the gating properties of the channel that can be consistent with both hyperexcitability and hypoexcitability. Simulation of neuronal firing and long depolarizing pulses mimicking promigraine conditions revealed that the effect of the mutation is a gain of function consistent with increased neuronal firing. However, during high-frequency discharges and long depolarizations, the effect became a loss of function. Recordings of firing of transfected neurons showed higher firing frequency at the beginning of long discharges. This self-limited capacity to induce neuronal hyperexcitability may be a specific characteristic of migraine mutations, able to both trigger the cascade of events that leads to migraine and counteract the development of extreme hyperexcitability typical of epileptic seizures. Thus, we found a possible difference in the functional effects of FHM and familial epilepsy mutations of Nav1.1.

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Year:  2008        PMID: 18632931      PMCID: PMC2721955          DOI: 10.1523/JNEUROSCI.4453-07.2008

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


  42 in total

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Authors:  W A Catterall
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2.  Role of the C-terminal domain in inactivation of brain and cardiac sodium channels.

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3.  Functional effects of two voltage-gated sodium channel mutations that cause generalized epilepsy with febrile seizures plus type 2.

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5.  SCN5A mutation (T1620M) causing Brugada syndrome exhibits different phenotypes when expressed in Xenopus oocytes and mammalian cells.

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6.  Nav1.3 sodium channels: rapid repriming and slow closed-state inactivation display quantitative differences after expression in a mammalian cell line and in spinal sensory neurons.

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7.  Cloning, distribution and functional analysis of the type III sodium channel from human brain.

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8.  Magnetoencephalographic fields from patients with spontaneous and induced migraine aura.

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9.  Mechanisms of migraine aura revealed by functional MRI in human visual cortex.

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10.  Molecular basis of an inherited epilepsy.

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  41 in total

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Review 2.  Calcium channels and synaptic transmission in familial hemiplegic migraine type 1 animal models.

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Review 4.  Mutational consequences of aberrant ion channels in neurological disorders.

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5.  Impaired action potential initiation in GABAergic interneurons causes hyperexcitable networks in an epileptic mouse model carrying a human Na(V)1.1 mutation.

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6.  A functional null mutation of SCN1B in a patient with Dravet syndrome.

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Review 7.  Molecular genetics of migraine.

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8.  Nonfunctional NaV1.1 familial hemiplegic migraine mutant transformed into gain of function by partial rescue of folding defects.

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9.  Functional Effects of Schizophrenia-Linked Genetic Variants on Intrinsic Single-Neuron Excitability: A Modeling Study.

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