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Candidate Gene Testing in Clinical Cohort Studies with Multiplexed Genotyping and Mass Spectrometry
Published on: June 21, 2018
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.
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.
Abstract:
Genetic malformations of cortical development (MCDs), such as mild MCDs (mMCD), focal cortical dysplasia (FCD), and hemimegalencephaly (HME), are major causes of severe pediatric refractory epilepsies subjected to neurosurgery. FCD2 are characterized by neuropathological hallmarks that include enlarged dysmorphic neurons (DNs) and balloon cells (BCs). Here, we provide a comprehensive assessment of the contribution of germline and somatic variants in a large cohort of surgical MCD cases. We enrolled in a monocentric study 80 children with drug-resistant epilepsy and a postsurgical neuropathological diagnosis of mMCD, FCD1, FCD2, or HME. We performed targeted gene sequencing ( ≥ 2000X read depth) on matched blood-brain samples to search for low-allele frequency variants in mTOR pathway and FCD genes. We were able to elucidate 29% of mMCD/FCD1 patients and 63% of FCD2/HME patients. Somatic loss-of-function variants in the N-glycosylation pathway-associated SLC35A2 gene were found in mMCD/FCD1 cases. Somatic gain-of-function variants in MTOR and its activators (AKT3, PIK3CA, RHEB), as well as germline, somatic and two-hit loss-of-function variants in its repressors (DEPDC5, TSC1, TSC2) were found exclusively in FCD2/HME cases. We show that panel-negative FCD2 cases display strong pS6-immunostaining, stressing that all FCD2 are mTORopathies. Analysis of microdissected cells demonstrated that DNs and BCs carry the pathogenic variants. We further observed a correlation between the density of pathological cells and the variant-detection likelihood. Single-cell microdissection followed by sequencing of enriched pools of DNs unveiled a somatic second-hit loss-of-heterozygosity in a DEPDC5 germline case. In conclusion, this study indicates that mMCD/FCD1 and FCD2/HME are two distinct genetic entities: while all FCD2/HME are mosaic mTORopathies, mMCD/FCD1 are not caused by mTOR-pathway-hyperactivating variants, and ~ 30% of the cases are related to glycosylation defects. We provide a framework for efficient genetic testing in FCD/HME, linking neuropathology to genetic findings and emphasizing the usefulness of molecular evaluation in the pediatric epileptic neurosurgical population.
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