Dissecting the genetic basis of focal cortical dysplasia: a large cohort study

Sara Baldassari1,2,3,4, Théo Ribierre1,2,3,4, Elise Marsan1,2,3,4

  • 1Sorbonne Université, UPMC Univ Paris 06, UMR S 1127, Paris, France.

Acta Neuropathologica
|August 25, 2019
PubMed

Insights

Genetic malformations of cortical development (MCDs) in children are distinct entities. FCD2/HME are mosaic mTORopathies, while mMCD/FCD1 involve glycosylation defects, guiding improved genetic testing.

Area of Science:

  • Neurogenetics
  • Developmental Neuroscience
  • Epilepsy Research

Background:

  • Malformations of Cortical Development (MCDs) like mild MCD (mMCD), focal cortical dysplasia (FCD), and hemimegalencephaly (HME) are primary causes of pediatric refractory epilepsies.
  • Focal cortical dysplasia type 2 (FCD2) is neuropathologically defined by dysmorphic neurons (DNs) and balloon cells (BCs).
  • Understanding the genetic underpinnings of these conditions is crucial for diagnosis and treatment.

Purpose of the Study:

  • To comprehensively assess germline and somatic variants in a large cohort of pediatric surgical MCD cases.
  • To differentiate the genetic basis of mild MCD/FCD1 from FCD2/HME.
  • To establish a framework for efficient genetic testing in pediatric epilepsy surgery patients.

Main Methods:

  • Targeted gene sequencing (≥2000X read depth) of matched blood and brain samples from 80 children with drug-resistant epilepsy and MCD diagnoses.
  • Analysis focused on mTOR pathway and FCD-associated genes to detect low-allele frequency variants.
  • Microdissection of specific cell types (DNs, BCs) and single-cell sequencing were employed to pinpoint variant locations.

Main Results:

  • Genetic variants were identified in 29% of mMCD/FCD1 cases and 63% of FCD2/HME cases.
  • mMCD/FCD1 cases showed somatic loss-of-function variants in SLC35A2 (N-glycosylation pathway); FCD2/HME cases revealed somatic/germline variants in mTOR pathway genes (MTOR, AKT3, PIK3CA, RHEB, DEPDC5, TSC1, TSC2).
  • All FCD2 cases, including panel-negative ones, exhibited strong pS6-immunostaining, confirming them as mTORopathies; pathogenic variants were located in DNs and BCs.

Conclusions:

  • mMCD/FCD1 and FCD2/HME represent distinct genetic entities.
  • FCD2/HME are consistently mosaic mTORopathies, whereas mMCD/FCD1 are not driven by mTOR hyperactivation and approximately 30% are linked to glycosylation defects.
  • This study provides a molecular framework for improved genetic diagnosis in pediatric MCDs, correlating neuropathology with genetic findings.

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