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Improved Diagnosis of Rare Disease Patients through Systematic Detection of Runs of Homozygosity

Autozygosity is associated with an increased risk of genetic rare disease, thus being a relevant factor for clinical genetic studies. More than 2400 exome sequencing data sets were analyzed and screened for autozygosity on the basis of detection of >1 Mbp runs of homozygosity (ROHs). A model was...

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Autores principales: Matalonga, Leslie, Laurie, Steven, Papakonstantinou, Anastasios, Piscia, Davide, Mereu, Elisabetta, Bullich, Gemma, Thompson, Rachel, Horvath, Rita, Pérez-Jurado, Luis, Riess, Olaf, Gut, Ivo, van Ommen, Gert-Jan, Lochmüller, Hanns, Beltran, Sergi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Investigative Pathology 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7477492/
https://www.ncbi.nlm.nih.gov/pubmed/32619640
http://dx.doi.org/10.1016/j.jmoldx.2020.06.008
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author Matalonga, Leslie
Laurie, Steven
Papakonstantinou, Anastasios
Piscia, Davide
Mereu, Elisabetta
Bullich, Gemma
Thompson, Rachel
Horvath, Rita
Pérez-Jurado, Luis
Riess, Olaf
Gut, Ivo
van Ommen, Gert-Jan
Lochmüller, Hanns
Beltran, Sergi
author_facet Matalonga, Leslie
Laurie, Steven
Papakonstantinou, Anastasios
Piscia, Davide
Mereu, Elisabetta
Bullich, Gemma
Thompson, Rachel
Horvath, Rita
Pérez-Jurado, Luis
Riess, Olaf
Gut, Ivo
van Ommen, Gert-Jan
Lochmüller, Hanns
Beltran, Sergi
author_sort Matalonga, Leslie
collection PubMed
description Autozygosity is associated with an increased risk of genetic rare disease, thus being a relevant factor for clinical genetic studies. More than 2400 exome sequencing data sets were analyzed and screened for autozygosity on the basis of detection of >1 Mbp runs of homozygosity (ROHs). A model was built to predict if an individual is likely to be a consanguineous offspring (accuracy, 98%), and probability of consanguinity ranges were established according to the total ROH size. Application of the model resulted in the reclassification of the consanguinity status of 12% of the patients. The analysis of a subset of 79 consanguineous cases with the Rare Disease (RD)–Connect Genome-Phenome Analysis Platform, combining variant filtering and homozygosity mapping, enabled a 50% reduction in the number of candidate variants and the identification of homozygous pathogenic variants in 41 patients, with an overall diagnostic yield of 52%. The newly defined consanguinity ranges provide, for the first time, specific ROH thresholds to estimate inbreeding within a pedigree on disparate exome sequencing data, enabling confirmation or (re)classification of consanguineous status, hence increasing the efficiency of molecular diagnosis and reporting on secondary consanguinity findings, as recommended by American College of Medical Genetics and Genomics guidelines.
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spelling pubmed-74774922020-09-11 Improved Diagnosis of Rare Disease Patients through Systematic Detection of Runs of Homozygosity Matalonga, Leslie Laurie, Steven Papakonstantinou, Anastasios Piscia, Davide Mereu, Elisabetta Bullich, Gemma Thompson, Rachel Horvath, Rita Pérez-Jurado, Luis Riess, Olaf Gut, Ivo van Ommen, Gert-Jan Lochmüller, Hanns Beltran, Sergi J Mol Diagn Article Autozygosity is associated with an increased risk of genetic rare disease, thus being a relevant factor for clinical genetic studies. More than 2400 exome sequencing data sets were analyzed and screened for autozygosity on the basis of detection of >1 Mbp runs of homozygosity (ROHs). A model was built to predict if an individual is likely to be a consanguineous offspring (accuracy, 98%), and probability of consanguinity ranges were established according to the total ROH size. Application of the model resulted in the reclassification of the consanguinity status of 12% of the patients. The analysis of a subset of 79 consanguineous cases with the Rare Disease (RD)–Connect Genome-Phenome Analysis Platform, combining variant filtering and homozygosity mapping, enabled a 50% reduction in the number of candidate variants and the identification of homozygous pathogenic variants in 41 patients, with an overall diagnostic yield of 52%. The newly defined consanguinity ranges provide, for the first time, specific ROH thresholds to estimate inbreeding within a pedigree on disparate exome sequencing data, enabling confirmation or (re)classification of consanguineous status, hence increasing the efficiency of molecular diagnosis and reporting on secondary consanguinity findings, as recommended by American College of Medical Genetics and Genomics guidelines. American Society for Investigative Pathology 2020-09 /pmc/articles/PMC7477492/ /pubmed/32619640 http://dx.doi.org/10.1016/j.jmoldx.2020.06.008 Text en © 2020 Association for Molecular Pathology and American Society for Investigative Pathology. Published by Elsevier Inc. http://creativecommons.org/licenses/by-nc-nd/4.0/ This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Article
Matalonga, Leslie
Laurie, Steven
Papakonstantinou, Anastasios
Piscia, Davide
Mereu, Elisabetta
Bullich, Gemma
Thompson, Rachel
Horvath, Rita
Pérez-Jurado, Luis
Riess, Olaf
Gut, Ivo
van Ommen, Gert-Jan
Lochmüller, Hanns
Beltran, Sergi
Improved Diagnosis of Rare Disease Patients through Systematic Detection of Runs of Homozygosity
title Improved Diagnosis of Rare Disease Patients through Systematic Detection of Runs of Homozygosity
title_full Improved Diagnosis of Rare Disease Patients through Systematic Detection of Runs of Homozygosity
title_fullStr Improved Diagnosis of Rare Disease Patients through Systematic Detection of Runs of Homozygosity
title_full_unstemmed Improved Diagnosis of Rare Disease Patients through Systematic Detection of Runs of Homozygosity
title_short Improved Diagnosis of Rare Disease Patients through Systematic Detection of Runs of Homozygosity
title_sort improved diagnosis of rare disease patients through systematic detection of runs of homozygosity
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7477492/
https://www.ncbi.nlm.nih.gov/pubmed/32619640
http://dx.doi.org/10.1016/j.jmoldx.2020.06.008
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