Genome sequencing in persistently unsolved white matter disorders
Guy Helman1,2, Bryan R Lajoie3, Joanna Crawford2
1Murdoch Children's Research Institute, The Royal Children's Hospital Melbourne, Parkville, Melbourne, Australia.
Annals of Clinical and Translational Neurology
|January 9, 2020
Summary
Genome sequencing significantly improves diagnosis for rare genetic white matter disorders, even after exome sequencing. This advanced genomic approach identifies complex variants, increasing diagnostic yield in challenging cases.
Area of Science:
- Genetics
- Neurology
- Genomic Medicine
Background:
- Genetic white matter disorders present diverse causes and symptoms, complicating diagnosis.
- Previous exome sequencing efforts left many cases unresolved.
- Identifying the genetic basis is crucial for understanding and managing these rare neurological conditions.
Purpose of the Study:
- To evaluate the diagnostic effectiveness of genome sequencing in previously unsolved genetic white matter disorder cases.
- To determine if genome sequencing offers advantages over exome sequencing for complex genetic variants.
- To assess the overall diagnostic yield of genome sequencing in a historical cohort.
Main Methods:
- Performed genome sequencing on 41 unsolved cases with prior exome sequencing.
- Reanalyzed an additional 191 cases using updated genetic information and variant annotation.
- Included analysis of copy number variants (CNVs) and variants in difficult-to-sequence genomic regions.
Main Results:
- Reanalysis resolved 64% of previously undiagnosed cases by incorporating novel genes and improved variant interpretation.
- Genome sequencing directly identified diagnoses in remaining cases, including those with complex structural variations (CNVs).
- The combined approach achieved an 85% diagnostic yield in the retrospective cohort.
Conclusions:
- Genome sequencing is highly effective for diagnosing genetic white matter disorders, particularly when prior exome sequencing was inconclusive.
- This method successfully identifies a wider range of genetic variants, including structural and deep intronic mutations.
- Genome sequencing represents a critical advancement in diagnosing rare neurological diseases, improving patient outcomes.


