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Most neurodevelopmental disorders with single gene diagnoses act via haploinsufficiency, in which only one of the two gene copies is functional1. SCN2A haploinsufficiency is one of the most frequent causes of neurodevelopmental disorder, often presenting with autism spectrum disorder, intellectual disability and, in a subset of children, refractory epilepsy2. Here, using SCN2A haploinsufficiency as a proof-of-concept, we show that upregulation of the existing functional gene copy through CRISPR activation (CRISPRa) can rescue neurological-associated phenotypes in Scn2a haploinsufficient mice. We first show that restoring Scn2a expression in adolescent heterozygous Scn2a conditional knock-in mice rescues electrophysiological deficits associated with Scn2a haploinsufficiency (Scn2a+/-). Next, using an adeno-associated virus CRISPRa-based treatment in adolescent mice, we show that we can correct intrinsic and synaptic deficits in neocortical pyramidal cells, a major cell type that contributes to neurodevelopmental disorders and seizure aetiology in SCN2A haploinsufficiency. Furthermore, we find that systemic delivery of CRISPRa protects Scn2a+/- mice against chemoconvulsant-induced seizures. Finally, we also show that adeno-associated virus CRISPRa treatment rescues excitability in SCN2A haploinsufficient human stem-cell-derived neurons. Our results showcase the potential of this therapeutic approach to rescue SCN2A haploinsufficiency and demonstrates that rescue even at adolescent stages can ameliorate neurodevelopmental phenotypes.

More information Original publication

DOI

10.1038/s41586-025-09522-w

Type

Journal article

Publication Date

2025-10-01T00:00:00+00:00

Volume

646

Pages

983 - 991

Total pages

8

Keywords

Animals, Mice, NAV1.2 Voltage-Gated Sodium Channel, Humans, Neurodevelopmental Disorders, Haploinsufficiency, Dependovirus, Male, Female, CRISPR-Cas Systems, Seizures, Pyramidal Cells, Gene Knock-In Techniques, Phenotype, Synapses, Disease Models, Animal, Proof of Concept Study, Clustered Regularly Interspaced Short Palindromic Repeats, Genetic Therapy