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Updated: Jun 14, 2026

A Behavioral Screen for Heat-Induced Seizures in Mouse Models of Epilepsy
Published on: July 12, 2021
Molecular correlates of age-dependent seizures in an inherited neonatal-infantile epilepsy
Yunxiang Liao1, Liesbet Deprez, Snezana Maljevic
1Neurological Clinic and Institute of Applied Physiology, University of Ulm, Ulm, 89081, Germany.
Insights
Mutations in the SCN2A gene cause benign familial neonatal-infantile seizures by altering sodium channel Na(V)1.2 function. Channel expression changes during development explain why seizures are transient.
Area of Science:
- Neuroscience
- Genetics
- Molecular Biology
Background:
- Idiopathic epilepsy syndromes often exhibit age-dependent seizure activity, with underlying molecular causes frequently unknown.
- Benign familial neonatal-infantile seizures are linked to mutations in the SCN2A gene, which encodes the voltage-gated sodium channel Na(V)1.2.
Purpose of the Study:
- To elucidate the molecular mechanism behind the age-dependent nature of benign familial neonatal-infantile seizures.
- To investigate the functional consequences of novel SCN2A mutations on Na(V)1.2 channel activity and developmental expression.
Main Methods:
- Identified and functionally analyzed two novel SCN2A mutations in neonatal and adult splice variants of Na(V)1.2 channels expressed in tsA201 cells.
- Examined the developmental expression patterns of Na(V)1.2 and Na(V)1.6 channels in mouse brain slices using immunohistochemistry and RT-PCR.
Main Results:
- Mutations induced gain-of-function changes in Na(V)1.2 channels, including increased persistent Na(+) current and altered inactivation gating.
- Developmental splicing differences did not fully explain seizure remission; however, Na(V)1.2 expression decreased and was replaced by Na(V)1.6 in mature neurons.
- Na(V)1.2 channels are predominantly found in early neuronal development at axon initial segments, with reduced expression in adulthood.
Conclusions:
- Gain-of-function mutations in Na(V)1.2 channels contribute to transient seizures in benign familial neonatal-infantile epilepsy.
- The developmental shift in sodium channel expression, with Na(V)1.2 being replaced by Na(V)1.6, provides a plausible mechanism for seizure remission during maturation.
Abstract:
Many idiopathic epilepsy syndromes have a characteristic age dependence, the underlying molecular mechanisms of which are largely unknown. Here we propose a mechanism that can explain that epileptic spells in benign familial neonatal-infantile seizures occur almost exclusively during the first days to months of life. Benign familial neonatal-infantile seizures are caused by mutations in the gene SCN2A encoding the voltage-gated Na(+) channel Na(V)1.2. We identified two novel SCN2A mutations causing benign familial neonatal-infantile seizures and analysed the functional consequences of these mutations in a neonatal and an adult splice variant of the human Na(+) channel Na(V)1.2 expressed heterologously in tsA201 cells together with beta1 and beta2 subunits. We found significant gating changes leading to a gain-of-function, such as an increased persistent Na(+) current, accelerated recovery from fast inactivation or altered voltage-dependence of steady-state activation. Those were restricted to the neonatal splice variant for one mutation, but more pronounced for the adult form for the other, suggesting that a differential developmental splicing does not provide a general explanation for seizure remission. We therefore analysed the developmental expression of Na(V)1.2 and of another voltage-gated Na(+) channel, Na(V)1.6, using immunohistochemistry and real-time reverse transcription-polymerase chain reaction in mouse brain slices. We found that Na(V)1.2 channels are expressed early in development at axon initial segments of principal neurons in the hippocampus and cortex, but their expression is diminished and they are gradually replaced as the dominant channel type by Na(V)1.6 during maturation. This finding provides a plausible explanation for the transient expression of seizures that occur due to a gain-of-function of mutant Na(V)1.2 channels.
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