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Gys1 Antisense Therapy Prevents Disease-Driving Aggregates and Epileptiform Discharges in a Lafora Disease Mouse Model

  • Katherine J. Donohue
  • , Bethany Fitzsimmons
  • , Ronald C. Bruntz
  • , Kia H. Markussen
  • , Lyndsay E.A. Young
  • , Harrison A. Clarke
  • , Peyton T. Coburn
  • , Laiken E. Griffith
  • , William Sanders
  • , Jack Klier
  • , Sara N. Burke
  • , Andrew P. Maurer
  • , Berge A. Minassian
  • , Ramon C. Sun
  • , Holly B. Kordasiewisz
  • , Matthew S. Gentry

Producción científica: Articlerevisión exhaustiva

19 Citas (Scopus)

Resumen

Patients with Lafora disease have a mutation in EPM2A or EPM2B, resulting in dysregulation of glycogen metabolism throughout the body and aberrant glycogen molecules that aggregate into Lafora bodies. Lafora bodies are particularly damaging in the brain, where the aggregation drives seizures with increasing severity and frequency, coupled with neurodegeneration. Previous work employed mouse genetic models to reduce glycogen synthesis by approximately 50%, and this strategy significantly reduced Lafora body formation and disease phenotypes. Therefore, an antisense oligonucleotide (ASO) was developed to reduce glycogen synthesis in the brain by targeting glycogen synthase 1 (Gys1). To test the distribution and efficacy of this drug, the Gys1-ASO was administered to Epm2b-/- mice via intracerebroventricular administration at 4, 7, and 10 months. The mice were then sacrificed at 13 months and their brains analyzed for Gys1 expression, glycogen aggregation, and neuronal excitability. The mice treated with Gys1-ASO exhibited decreased Gys1 protein levels, decreased glycogen aggregation, and reduced epileptiform discharges compared to untreated Epm2b-/- mice. This work provides proof of concept that a Gys1-ASO halts disease progression of EPM2B mutations of Lafora disease.

Idioma originalEnglish
Páginas (desde-hasta)1808-1819
Número de páginas12
PublicaciónNeurotherapeutics
Volumen20
N.º6
DOI
EstadoPublished - oct 2023

Nota bibliográfica

Publisher Copyright:
© 2023, The Author(s).

Financiación

This work was supported by the National Institute of Health grants R35 NS116824, R01CA26604, and P01 NS097197 to M.S.G. and R01 AG066653, R01CA26604, and CureAlz fund to R.C.S. as well as funding and reagents from Ionis Pharmaceuticals. This research was also supported by the Biospecimen Procurement and Translational Pathology Shared Resource Facility of the University of Kentucky Markey Cancer Center (P30CA177558).

FinanciadoresNúmero del financiador
National Institutes of Health (NIH)R01 AG066653, R35 NS116824, P01 NS097197, R01CA26604
ISIS Pharmaceuticals
University of Kentucky Markey Comprehensive Cancer CenterP30CA177558

    ASJC Scopus subject areas

    • Pharmacology
    • Clinical Neurology
    • Pharmacology (medical)

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