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Copy number variation analysis increases the diagnostic yield in muscle diseases

OBJECTIVE: Copy number variants (CNVs) were analyzed from next-generation sequencing data, with the aim of improving diagnostic yield in skeletal muscle disorder cases. METHODS: Four publicly available bioinformatic analytic tools were used to analyze CNVs from sequencing data from patients with mus...

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Autores principales: Välipakka, Salla, Savarese, Marco, Johari, Mridul, Sagath, Lydia, Arumilli, Meharji, Kiiski, Kirsi, Sáenz, Amets, Lopez de Munain, Adolfo, Cobo, Ana-Maria, Pelin, Katarina, Udd, Bjarne, Hackman, Peter
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Wolters Kluwer 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6140371/
https://www.ncbi.nlm.nih.gov/pubmed/30238059
http://dx.doi.org/10.1212/NXG.0000000000000204
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author Välipakka, Salla
Savarese, Marco
Johari, Mridul
Sagath, Lydia
Arumilli, Meharji
Kiiski, Kirsi
Sáenz, Amets
Lopez de Munain, Adolfo
Cobo, Ana-Maria
Pelin, Katarina
Udd, Bjarne
Hackman, Peter
author_facet Välipakka, Salla
Savarese, Marco
Johari, Mridul
Sagath, Lydia
Arumilli, Meharji
Kiiski, Kirsi
Sáenz, Amets
Lopez de Munain, Adolfo
Cobo, Ana-Maria
Pelin, Katarina
Udd, Bjarne
Hackman, Peter
author_sort Välipakka, Salla
collection PubMed
description OBJECTIVE: Copy number variants (CNVs) were analyzed from next-generation sequencing data, with the aim of improving diagnostic yield in skeletal muscle disorder cases. METHODS: Four publicly available bioinformatic analytic tools were used to analyze CNVs from sequencing data from patients with muscle diseases. The patients were previously analyzed with a targeted gene panel for single nucleotide variants and small insertions and deletions, without achieving final diagnosis. Variants detected by multiple CNV analysis tools were verified with either array comparative genomic hybridization or PCR. The clinical significance of the verified CNVs was interpreted, considering previously identified variants, segregation studies, and clinical information of the patient cases. RESULTS: Combining analysis of all different mutation types enabled integration of results and identified the final cause of the disease in 9 myopathy cases. Complex effects like compound heterozygosity of different mutation types and compound disease arising from variants of different genes were unraveled. We identified the first large intragenic deletion of the titin (TTN) gene implicated in the pathogenesis of a severe form of myopathy. Our work also revealed a “double-trouble” effect in a patient carrying a single heterozygous insertion/deletion mutation in the TTN gene and a Becker muscular dystrophy causing deletion in the dystrophin gene. CONCLUSIONS: Causative CNVs were identified proving that analysis of CNVs is essential for increasing the diagnostic yield in muscle diseases. Complex severe muscular dystrophy phenotypes can be the result of different mutation types but also of the compound effect of 2 different genetic diseases.
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spelling pubmed-61403712018-09-20 Copy number variation analysis increases the diagnostic yield in muscle diseases Välipakka, Salla Savarese, Marco Johari, Mridul Sagath, Lydia Arumilli, Meharji Kiiski, Kirsi Sáenz, Amets Lopez de Munain, Adolfo Cobo, Ana-Maria Pelin, Katarina Udd, Bjarne Hackman, Peter Neurol Genet Article OBJECTIVE: Copy number variants (CNVs) were analyzed from next-generation sequencing data, with the aim of improving diagnostic yield in skeletal muscle disorder cases. METHODS: Four publicly available bioinformatic analytic tools were used to analyze CNVs from sequencing data from patients with muscle diseases. The patients were previously analyzed with a targeted gene panel for single nucleotide variants and small insertions and deletions, without achieving final diagnosis. Variants detected by multiple CNV analysis tools were verified with either array comparative genomic hybridization or PCR. The clinical significance of the verified CNVs was interpreted, considering previously identified variants, segregation studies, and clinical information of the patient cases. RESULTS: Combining analysis of all different mutation types enabled integration of results and identified the final cause of the disease in 9 myopathy cases. Complex effects like compound heterozygosity of different mutation types and compound disease arising from variants of different genes were unraveled. We identified the first large intragenic deletion of the titin (TTN) gene implicated in the pathogenesis of a severe form of myopathy. Our work also revealed a “double-trouble” effect in a patient carrying a single heterozygous insertion/deletion mutation in the TTN gene and a Becker muscular dystrophy causing deletion in the dystrophin gene. CONCLUSIONS: Causative CNVs were identified proving that analysis of CNVs is essential for increasing the diagnostic yield in muscle diseases. Complex severe muscular dystrophy phenotypes can be the result of different mutation types but also of the compound effect of 2 different genetic diseases. Wolters Kluwer 2017-12-11 /pmc/articles/PMC6140371/ /pubmed/30238059 http://dx.doi.org/10.1212/NXG.0000000000000204 Text en Copyright © 2017 The Author(s). Published by Wolters Kluwer Health, Inc. on behalf of the American Academy of Neurology. This is an open access article distributed under the terms of the Creative Commons Attribution-NonCommercial-NoDerivatives License 4.0 (CC BY-NC-ND) (http://creativecommons.org/licenses/by-nc-nd/4.0/) , which permits downloading and sharing the work provided it is properly cited. The work cannot be changed in any way or used commercially without permission from the journal.
spellingShingle Article
Välipakka, Salla
Savarese, Marco
Johari, Mridul
Sagath, Lydia
Arumilli, Meharji
Kiiski, Kirsi
Sáenz, Amets
Lopez de Munain, Adolfo
Cobo, Ana-Maria
Pelin, Katarina
Udd, Bjarne
Hackman, Peter
Copy number variation analysis increases the diagnostic yield in muscle diseases
title Copy number variation analysis increases the diagnostic yield in muscle diseases
title_full Copy number variation analysis increases the diagnostic yield in muscle diseases
title_fullStr Copy number variation analysis increases the diagnostic yield in muscle diseases
title_full_unstemmed Copy number variation analysis increases the diagnostic yield in muscle diseases
title_short Copy number variation analysis increases the diagnostic yield in muscle diseases
title_sort copy number variation analysis increases the diagnostic yield in muscle diseases
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6140371/
https://www.ncbi.nlm.nih.gov/pubmed/30238059
http://dx.doi.org/10.1212/NXG.0000000000000204
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