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Solving inherited white matter disorder etiologies in the neurology clinic: Challenges and lessons learned using next-generation sequencing

INTRODUCTION: Rare neurodevelopmental disorders, including inherited white matter disorders or leukodystrophies, often present a diagnostic challenge on a genetic level given the large number of causal genes associated with a range of disease subtypes. This study aims to demonstrate the challenges a...

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Autores principales: Perrier, Stefanie, Guerrero, Kether, Tran, Luan T., Michell-Robinson, Mackenzie A., Legault, Geneviève, Brais, Bernard, Sylvain, Michel, Dorman, James, Demos, Michelle, Köhler, Wolfgang, Pastinen, Tomi, Thiffault, Isabelle, Bernard, Geneviève
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10108901/
https://www.ncbi.nlm.nih.gov/pubmed/37077564
http://dx.doi.org/10.3389/fneur.2023.1148377
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author Perrier, Stefanie
Guerrero, Kether
Tran, Luan T.
Michell-Robinson, Mackenzie A.
Legault, Geneviève
Brais, Bernard
Sylvain, Michel
Dorman, James
Demos, Michelle
Köhler, Wolfgang
Pastinen, Tomi
Thiffault, Isabelle
Bernard, Geneviève
author_facet Perrier, Stefanie
Guerrero, Kether
Tran, Luan T.
Michell-Robinson, Mackenzie A.
Legault, Geneviève
Brais, Bernard
Sylvain, Michel
Dorman, James
Demos, Michelle
Köhler, Wolfgang
Pastinen, Tomi
Thiffault, Isabelle
Bernard, Geneviève
author_sort Perrier, Stefanie
collection PubMed
description INTRODUCTION: Rare neurodevelopmental disorders, including inherited white matter disorders or leukodystrophies, often present a diagnostic challenge on a genetic level given the large number of causal genes associated with a range of disease subtypes. This study aims to demonstrate the challenges and lessons learned in the genetic investigations of leukodystrophies through presentation of a series of cases solved using exome or genome sequencing. METHODS: Each of the six patients had a leukodystrophy associated with hypomyelination or delayed myelination on MRI, and inconclusive clinical diagnostic genetic testing results. We performed next generation sequencing (case-based exome or genome sequencing) to further investigate the genetic cause of disease. RESULTS: Following different lines of investigation, molecular diagnoses were obtained for each case, with patients harboring pathogenic variants in a range of genes including TMEM106B, GJA1, AGA, POLR3A, and TUBB4A. We describe the lessons learned in reaching the genetic diagnosis, including the importance of (a) utilizing proper multi-gene panels in clinical testing, (b) assessing the reliability of biochemical assays in supporting diagnoses, and (c) understanding the limitations of exome sequencing methods in regard to CNV detection and region coverage in GC-rich areas. DISCUSSION: This study illustrates the importance of applying a collaborative diagnostic approach by combining detailed phenotyping data and metabolic results from the clinical environment with advanced next generation sequencing analysis techniques from the research environment to increase the diagnostic yield in patients with genetically unresolved leukodystrophies.
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spelling pubmed-101089012023-04-18 Solving inherited white matter disorder etiologies in the neurology clinic: Challenges and lessons learned using next-generation sequencing Perrier, Stefanie Guerrero, Kether Tran, Luan T. Michell-Robinson, Mackenzie A. Legault, Geneviève Brais, Bernard Sylvain, Michel Dorman, James Demos, Michelle Köhler, Wolfgang Pastinen, Tomi Thiffault, Isabelle Bernard, Geneviève Front Neurol Neurology INTRODUCTION: Rare neurodevelopmental disorders, including inherited white matter disorders or leukodystrophies, often present a diagnostic challenge on a genetic level given the large number of causal genes associated with a range of disease subtypes. This study aims to demonstrate the challenges and lessons learned in the genetic investigations of leukodystrophies through presentation of a series of cases solved using exome or genome sequencing. METHODS: Each of the six patients had a leukodystrophy associated with hypomyelination or delayed myelination on MRI, and inconclusive clinical diagnostic genetic testing results. We performed next generation sequencing (case-based exome or genome sequencing) to further investigate the genetic cause of disease. RESULTS: Following different lines of investigation, molecular diagnoses were obtained for each case, with patients harboring pathogenic variants in a range of genes including TMEM106B, GJA1, AGA, POLR3A, and TUBB4A. We describe the lessons learned in reaching the genetic diagnosis, including the importance of (a) utilizing proper multi-gene panels in clinical testing, (b) assessing the reliability of biochemical assays in supporting diagnoses, and (c) understanding the limitations of exome sequencing methods in regard to CNV detection and region coverage in GC-rich areas. DISCUSSION: This study illustrates the importance of applying a collaborative diagnostic approach by combining detailed phenotyping data and metabolic results from the clinical environment with advanced next generation sequencing analysis techniques from the research environment to increase the diagnostic yield in patients with genetically unresolved leukodystrophies. Frontiers Media S.A. 2023-04-03 /pmc/articles/PMC10108901/ /pubmed/37077564 http://dx.doi.org/10.3389/fneur.2023.1148377 Text en Copyright © 2023 Perrier, Guerrero, Tran, Michell-Robinson, Legault, Brais, Sylvain, Dorman, Demos, Köhler, Pastinen, Thiffault and Bernard. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Neurology
Perrier, Stefanie
Guerrero, Kether
Tran, Luan T.
Michell-Robinson, Mackenzie A.
Legault, Geneviève
Brais, Bernard
Sylvain, Michel
Dorman, James
Demos, Michelle
Köhler, Wolfgang
Pastinen, Tomi
Thiffault, Isabelle
Bernard, Geneviève
Solving inherited white matter disorder etiologies in the neurology clinic: Challenges and lessons learned using next-generation sequencing
title Solving inherited white matter disorder etiologies in the neurology clinic: Challenges and lessons learned using next-generation sequencing
title_full Solving inherited white matter disorder etiologies in the neurology clinic: Challenges and lessons learned using next-generation sequencing
title_fullStr Solving inherited white matter disorder etiologies in the neurology clinic: Challenges and lessons learned using next-generation sequencing
title_full_unstemmed Solving inherited white matter disorder etiologies in the neurology clinic: Challenges and lessons learned using next-generation sequencing
title_short Solving inherited white matter disorder etiologies in the neurology clinic: Challenges and lessons learned using next-generation sequencing
title_sort solving inherited white matter disorder etiologies in the neurology clinic: challenges and lessons learned using next-generation sequencing
topic Neurology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10108901/
https://www.ncbi.nlm.nih.gov/pubmed/37077564
http://dx.doi.org/10.3389/fneur.2023.1148377
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