Altered oligodendroglial cell development and increased myelination in SCN2A gain-of-function-linked epilepsy

Abstract Gain-of-function variants in SCN2A, encoding the voltage-gated sodium channel Na V 1.2, cause developmental and epileptic encephalopathies characterized by seizures, developmental delay, and white matter abnormalities. While Na V 1.2 is known to regulate neuronal excitability, its role in oligodendroglial cells is unclear. Here, we show that Na V 1.2 is expressed in early oligodendrocyte lineage stages. In mice carrying the gain-of-function Scn2a p.A263V variant, oligodendrocyte precursor cells displayed similar Na V 1.2 expression, but altered electrophysiological properties and calcium signaling. Single-cell transcriptomics revealed stage-specific changes in oligodendroglial maturation during early postnatal development, associated with lower variability and slightly faster conduction velocities. In adult mutant mice, gray matter myelination was increased without changes in oligodendrocyte numbers or myelin structure. Since Na V 1.2 was absent from mature oligodendrocytes, the enhanced myelination likely reflects an activity-dependent adaptation to altered neuronal network activity rather than a primary myelinopathy. These findings identify a glial contribution to SCN2A -related disease mechanisms and underscore the need to consider neuron–glia interactions when developing targeted therapies for epilepsy.

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Publication Details

Journal
Acta Neuropathologica Communications
Published
2026-10-07
DOI
https://doi.org/10.1186/s40478-026-02437-1
Primary Topic
Epilepsy research and treatment
Type
article
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article

Altered oligodendroglial cell development and increased myelination in SCN2A gain-of-function-linked epilepsy

Hang Lyu, Dirk Isbrandt, Ulrike B. S. Hedrich, Malte C. Stockebrand et al.
Acta Neuropathologica Communications
Epilepsy research and treatment
article

Altered oligodendroglial cell development and increased myelination in SCN2A gain-of-function-linked epilepsy

Hang Lyu, Dirk Isbrandt, Ulrike B. S. Hedrich, Malte C. Stockebrand, Erik Späte, Birgit Engeland, Friederike Pfeiffer, Konstantin V. Khodosevich, Xian Xin, Ying Sun, Daniil Kirianov, Mariapia Grassia, Constanza Bravo-Rossainz Baez
article en

Abstract

Abstract Gain-of-function variants in SCN2A, encoding the voltage-gated sodium channel Na V 1.2, cause developmental and epileptic encephalopathies characterized by seizures, developmental delay, and white matter abnormalities. While Na V 1.2 is known to regulate neuronal excitability, its role in oligodendroglial cells is unclear. Here, we show that Na V 1.2 is expressed in early oligodendrocyte lineage stages. In mice carrying the gain-of-function Scn2a p.A263V variant, oligodendrocyte precursor cells displayed similar Na V 1.2 expression, but altered electrophysiological properties and calcium signaling. Single-cell transcriptomics revealed stage-specific changes in oligodendroglial maturation during early postnatal development, associated with lower variability and slightly faster conduction velocities. In adult mutant mice, gray matter myelination was increased without changes in oligodendrocyte numbers or myelin structure. Since Na V 1.2 was absent from mature oligodendrocytes, the enhanced myelination likely reflects an activity-dependent adaptation to altered neuronal network activity rather than a primary myelinopathy. These findings identify a glial contribution to SCN2A -related disease mechanisms and underscore the need to consider neuron–glia interactions when developing targeted therapies for epilepsy.

Acta Neuropathologica Communications
University of Copenhagen (DK), University of Cologne (DE), German Center for Neurodegenerative Diseases (DE), Hertie Institute for Clinical Brain Research (DE), University of Tübingen (DE)
Openalex Percentile: Top 12%
Epilepsy research and treatment
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