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Semiconductor Sequencing for Preimplantation Genetic Testing for Aneuploidy
Published on: August 25, 2019
Optimized trio genome sequencing (OTGS) as a first-tier genetic test in critically ill infants: practice in China
Huijun Wang1, Yulan Lu1, Xinran Dong1
1Center for Molecular Medicine, Shanghai Key Laboratory of Birth Defects, Children's Hospital of Fudan University, 399 Wanyuan Road, Shanghai, 201102, China.
Insights
Optimized trio genome sequencing (OTGS) rapidly diagnoses critically ill infants, identifying genetic causes in 47.7% of cases. This genetic testing improved patient treatment and outcomes.
Area of Science:
- Medical Genetics
- Genomics
- Pediatric Critical Care
Background:
- Genetic diagnoses are crucial for critically ill infants.
- Rapid turnaround time (TAT) for genetic testing is essential in intensive care settings.
- Optimized trio genome sequencing (OTGS) offers a comprehensive approach to genetic analysis.
Purpose of the Study:
- To evaluate the diagnostic yield and clinical utility of OTGS in critically ill pediatric patients.
- To assess the turnaround time and cost-effectiveness of OTGS.
- To determine the impact of genetic diagnoses on therapeutic strategies and patient outcomes.
Main Methods:
- 130 pediatric patients from intensive care units with suspected genetic disorders were enrolled.
- Optimized trio genome sequencing (OTGS) was performed with specific sequencing depths for patients and parents.
- Pathogenic variants, including single-nucleotide variants (SNVs) and copy number variations (CNVs)/structural variants (SVs), were identified.
Main Results:
- OTGS achieved a diagnostic rate of 47.7% (62 out of 130 patients).
- The average TAT for OTGS was 94 hours.
- Genetic diagnoses led to modified therapeutic strategies in 48.4% of diagnosed patients, improving prognosis.
Conclusions:
- OTGS is a high-capacity, rapid, and cost-effective genetic testing method for critically ill infants.
- This approach significantly increases diagnostic yield for genetic disorders in pediatric intensive care units.
- OTGS shows potential as a first-tier genetic testing strategy, particularly in developing countries.
Abstract:
Genome sequencing is used to make genetic diagnoses in critically ill infants with rapid turnaround time (TAT). Herein, to delineate the value of a genetic diagnosis, we provide the results from 130 pediatric patients in a large, comprehensive children's hospital in China. This study was performed using an optimized trio genome sequencing (OTGS) test. The sequencing depth for patients was 40-50 × and for their parents, it was 8-10 × . Patients from the pediatric or neonatal intensive care unit (PICU/NICU) with complicated clinical features were enrolled between June 2018 and December 2018, each with a phenotype suggesting an underlying genetic disorder. OTGS testing identified pathogenic variants in 62 of 130 individuals, resulting in a diagnosis rate of 47.7%. The TAT varied from 72 to 120 h, with an average of 94 h and a median of 90 h. Of the 62 infants with diagnoses, 48 (77.4%) had pathogenic single-nucleotide variants (SNVs), 12 (19.4%) had pathogenic copy number variations (CNVs) or structure variants (SVs), and 2 (3.2%) had small deletions in one allele plus pathogenic variants in another allele of autosomal recessive genes. Therapeutic strategies for 48.4% (30/62) of the diagnosed patients were modified and included transplantation, dietary recommendations, or change of drugs, which avoided morbidity and improved prognosis. This study provided high-capacity OTGS testing in detecting SNVs and chromosomal abnormalities with fast response, higher diagnostic yield, and lower cost. OTGS demonstrates the potential to be the first-tier of genetic testing used in critically ill infants in developing countries.
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