Diagnostic yield of genetic testing in epileptic encephalopathy in childhood
Saadet Mercimek-Mahmutoglu1,2, Jaina Patel1, Dawn Cordeiro1
1Division of Clinical and Metabolic Genetics, Department of Paediatrics, The Hospital for Sick Children, University of Toronto, Toronto, Ontario, Canada.
Insights
Genetic testing identified causes in 28% of children with epileptic encephalopathy. Targeted next-generation sequencing panels significantly improved diagnostic yield for these complex neurological disorders.
Area of Science:
- Pediatric Neurology
- Clinical Genetics
- Neurogenetics
Background:
- Epileptic encephalopathy is a severe neurological disorder in children.
- Accurate genetic diagnosis is crucial for understanding disease mechanisms and guiding treatment.
- Previous diagnostic yields for epileptic encephalopathy have been limited.
Purpose of the Study:
- To determine the genetic diagnostic yield in children with epileptic encephalopathy.
- To evaluate the effectiveness of targeted next-generation sequencing panels in identifying genetic causes.
- To assess the proportion of patients with treatable inherited metabolic disorders.
Main Methods:
- Retrospective cohort study of 110 patients with intractable epilepsy, global developmental delay, and cognitive dysfunction.
- Review of electronic patient charts for clinical, neuroimaging, biochemical, and molecular genetic data.
- Utilized targeted next-generation sequencing panels for epileptic encephalopathy genes.
Main Results:
- Genetic causes were identified in 28% of patients.
- Inherited metabolic disorders accounted for 7% of genetic diagnoses.
- Targeted next-generation sequencing panels achieved a 45% diagnostic yield, increasing the overall yield from <10% to >25%.
Conclusions:
- This study is the first to combine inherited metabolic disorders and other genetic causes in epileptic encephalopathy.
- Targeted next-generation sequencing panels significantly enhance the genetic diagnostic yield in epileptic encephalopathy.
- Identifying treatable inherited metabolic diseases is critical for early intervention.
Objective:
Epilepsy is a common neurologic disorder of childhood. To determine the genetic diagnostic yield in epileptic encephalopathy, we performed a retrospective cohort study in a single epilepsy genetics clinic.
Methods:
We included all patients with intractable epilepsy, global developmental delay, and cognitive dysfunction seen between January 2012 and June 2014 in the Epilepsy Genetics Clinic. Electronic patient charts were reviewed for clinical features, neuroimaging, biochemical investigations, and molecular genetic investigations including targeted next-generation sequencing of epileptic encephalopathy genes.
Results:
Genetic causes were identified in 28% of the 110 patients: 7% had inherited metabolic disorders including pyridoxine dependent epilepsy caused by ALDH7A1 mutation, Menkes disease, pyridox(am)ine-5-phosphate oxidase deficiency, cobalamin G deficiency, methylenetetrahydrofolate reductase deficiency, glucose transporter 1 deficiency, glycine encephalopathy, and pyruvate dehydrogenase complex deficiency; 21% had other genetic causes including genetic syndromes, pathogenic copy number variants on array comparative genomic hybridization, and epileptic encephalopathy related to mutations in the SCN1A, SCN2A, SCN8A, KCNQ2, STXBP1, PCDH19, and SLC9A6 genes. Forty-five percent of patients obtained a genetic diagnosis by targeted next-generation sequencing epileptic encephalopathy panels. It is notable that 4.5% of patients had a treatable inherited metabolic disease.
Significance:
To the best of our knowledge, this is the first study to combine inherited metabolic disorders and other genetic causes of epileptic encephalopathy. Targeted next-generation sequencing panels increased the genetic diagnostic yield from <10% to >25% in patients with epileptic encephalopathy.
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