Anti-seizure gene therapy for focal cortical dysplasia

Amanda Almacellas Barbanoj1, Robert T Graham1, Benito Maffei1

  • 1Department of Clinical and Experimental Epilepsy, UCL Queen Square Institute of Neurology, University College London, London WC1N 3BG, UK.

PubMed

Insights

Gene therapy using Kv1.1 potassium channel overexpression reduced seizures by 64% in a focal cortical dysplasia mouse model. This approach shows promise for treating epilepsy in malformations of cortical development but did not improve cognitive or behavioral deficits.

Area of Science:

  • Neuroscience
  • Genetics
  • Molecular Biology

Background:

  • Focal cortical dysplasias (FCDs) are developmental brain abnormalities causing epilepsy and cognitive issues.
  • Type II FCD is linked to mTOR hyperactivity and often resistant to epilepsy surgery.
  • Gene therapy offers an alternative for FCD treatment, especially when surgery is risky.

Purpose of the Study:

  • To evaluate Kv1.1 potassium channel gene therapy in a mouse model of mTOR-related FCD.
  • To assess the therapy's efficacy in reducing seizures and improving behavioral deficits.

Main Methods:

  • A mouse model of FCD was created using in utero electroporation with RHEB plasmid.
  • Gene therapy involved AAV9 delivery of a Kv1.1 transgene (AAV9-CAMK2A-EKC) to the dysplastic region.
  • Electrocorticography and behavioral tests quantified epilepsy and cognitive function.

Main Results:

  • AAV9-CAMK2A-EKC gene therapy significantly reduced seizure frequency by approximately 64%.
  • The treatment did not improve or worsen performance in behavioral tests assessing frontal lobe function.
  • No effects on interictal discharges or behavior were observed in non-seizing mice.

Conclusions:

  • Kv1.1 gene therapy effectively targets the epileptic phenotype in mTOR-related FCD.
  • This gene therapy approach holds translational potential for treating FCD-associated epilepsy.
  • Cognitive and behavioral comorbidities may not be resolved by interventions focused solely on circuit excitability.

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