Persistent sodium currents in SCN1A developmental and degenerative epileptic dyskinetic encephalopathy

Author:

Gorman Kathleen M12,Peters Colin H34,Lynch Bryan1,Jones Laura3,Bassett Dani S56ORCID,King Mary D12,Ruben Peter C3,Rosch Richard E789ORCID

Affiliation:

1. Department of Neurology and Clinical Neurophysiology, Children’s Health Ireland at Temple Street, Dublin, Ireland

2. School of Medicine and Medical Science, University College Dublin, Dublin, Ireland

3. Department of Biomedical Physiology and Kinesiology, Simon Fraser University, Burnaby, Canada

4. Department of Physiology and Biophysics, University of Colorado, Denver, CO, USA

5. Departments of Bioengineering, Electrical & Systems Engineering, Physics & Astronomy, Neurology, and Psychiatry, University of Pennsylvania, Philadelphia, PA, USA

6. Santa Fe Institute, Santa Fe, NM, USA

7. Department of Paediatric Neurology, Great Ormond Street Hospital for Children NHS Foundation Trust, London, UK

8. Department of Bioengineering, University of Pennsylvania, Philadelphia, PA, USA

9. MRC Centre for Neurodevelopmental Disorders, Institute of Psychiatry, Psychology and Neuroscience, King's College London, London, UK

Abstract

Abstract Pathogenic variants in the voltage-gated sodium channel gene (SCN1A) are amongst the most common genetic causes of childhood epilepsies. There is considerable heterogeneity in both the types of causative variants and associated phenotypes; a recent expansion of the phenotypic spectrum of SCN1A associated epilepsies now includes an early onset severe developmental and epileptic encephalopathy with regression and a hyperkinetic movement disorder. Herein, we report a female with a developmental and degenerative epileptic-dyskinetic encephalopathy, distinct and more severe than classic Dravet syndrome. Clinical diagnostics indicated a paternally inherited c.5053G>T; p. A1685S variant of uncertain significance in SCN1A. Whole-exome sequencing detected a second de novo mosaic (18%) c.2345G>A; p. T782I likely pathogenic variant in SCN1A (maternal allele). Biophysical characterization of both mutant channels in a heterologous expression system identified gain-of-function effects in both, with a milder shift in fast inactivation of the p. A1685S channels; and a more severe persistent sodium current in the p. T782I. Using computational models, we show that large persistent sodium currents induce hyper-excitability in individual cortical neurons, thus relating the severe phenotype to the empirically quantified sodium channel dysfunction. These findings further broaden the phenotypic spectrum of SCN1A associated epilepsies and highlight the importance of testing for mosaicism in epileptic encephalopathies. Detailed biophysical evaluation and computational modelling further highlight the role of gain-of-function variants in the pathophysiology of the most severe phenotypes associated with SCN1A.

Funder

Temple Street Foundation

British Columbia Rare Disease Foundation

Dravet Foundation of Canada and the Natural Sciences and Engineering Research Council of Canada

Wellcome Trust

John D. and Catherine T. MacArthur Foundation

Publisher

Oxford University Press (OUP)

Subject

General Earth and Planetary Sciences,General Environmental Science

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