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Clinical utility of genetic testing in pediatric drug-resistant epilepsy: a pilot study
Margie A Ream1, Mohamad A Mikati1
1Duke University Medical Center, Department of Pediatrics, Division of Pediatric Neurology, USA.
Insights
Genetic testing in pediatric drug-resistant epilepsy (PDRE) shows significant diagnostic utility in clinical practice. This study highlights the importance of genetic analysis for accurate diagnosis and management of PDRE cases.
Area of Science:
- Neurology
- Genetics
- Pediatrics
Background:
- The clinical utility and real-world yield of genetic testing for pediatric drug-resistant epilepsy (PDRE) remain under-explored.
- Understanding the practical implications of genetic testing in PDRE is crucial for clinical decision-making.
Purpose of the Study:
- To evaluate the diagnostic yield and clinical utility of genetic testing in a tertiary care center's PDRE patient population.
- To assess the impact of genetic testing on the diagnosis and management of pediatric drug-resistant epilepsy.
Main Methods:
- Retrospective review of clinical genetic testing data over one year in a single tertiary care center.
- Inclusion of various genetic tests based on clinical judgment: karyotype, chromosomal microarray, single gene sequencing, gene panels, and whole exome sequencing (WES).
Main Results:
- Overall diagnostic yield of genetic testing was 34.5%, with gene panels showing the highest individual yield (46.2%).
- Novel phenotypes and disease-causing mutations were identified in 6.9% of patients, and pharmacologic variants in 17.2%.
- Variants of unknown significance (VUSs) were found in 34.5% of cases, and incidental findings of recessive neurologic disease carriers in 10.3%.
Conclusions:
- Genetic testing demonstrates considerable utility in diagnosing and managing pediatric drug-resistant epilepsy.
- Further large-scale studies across diverse populations are warranted to confirm these findings.
- Clinics must be prepared for the complex genetic counseling and management challenges arising from testing results.
Rationale:
The utility of genetic testing in pediatric drug-resistant epilepsy (PDRE), its yield in "real life" clinical practice, and the practical implications of such testing are yet to be determined.
Goal:
To start to address the above gaps in our knowledge as they apply to a patient population seen in a tertiary care center.
Methods:
We retrospectively reviewed our experience with the use of clinically available genetic tests in the diagnosis and management of PDRE in one clinic over one year. Genetic testing included, depending on clinical judgment, one or more of the following: karyotype, chromosomal microarray, single gene sequencing, gene sequencing panels, and/or whole exome sequencing (WES).
Results:
We were more likely to perform genetic testing in patients with developmental delay, epileptic encephalopathy, and generalized epilepsy. In our unique population, the yield of specific genetic diagnosis was relatively high: karyotype 14.3%, microarray 16.7%, targeted single gene sequencing 15.4%, gene panels 46.2%, and WES 16.7%. Overall yield of diagnosis from at least one of the above tests was 34.5%. Disease-causing mutations that were not clinically suspected based on the patients' phenotypes and representing novel phenotypes were found in 6.9% (2/29), with an additional 17.2% (5/29) demonstrating pharmacologic variants. Three patients were incidentally found to be carriers of recessive neurologic diseases (10.3%). Variants of unknown significance (VUSs) were identified in 34.5% (10/29).
Conclusions:
We conclude that genetic testing had at least some utility in our patient population of PDRE, that future similar larger studies in various populations are warranted, and that clinics offering such tests must be prepared to address the complicated questions raised by the results of such testing.
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