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Spinal muscular atrophy caused by a novel Alu‐mediated deletion of exons 2a‐5 in SMN1 undetectable with routine genetic testing

BACKGROUND: Spinal muscular atrophy (SMA) is an inherited neuromuscular disease affecting 1 in 8,000 newborns. The majority of patients carry bi‐allelic variants in the survival of motor neuron 1 gene (SMN1). SMN1 is located in a duplicated region on chromosome 5q13 that contains Alu elements and is...

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Autores principales: Jedličková, Ivana, Přistoupilová, Anna, Nosková, Lenka, Majer, Filip, Stránecký, Viktor, Hartmannová, Hana, Hodaňová, Kateřina, Trešlová, Helena, Hýblová, Michaela, Solár, Peter, Minárik, Gabriel, Giertlová, Mária, Kmoch, Stanislav
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7336725/
https://www.ncbi.nlm.nih.gov/pubmed/32337852
http://dx.doi.org/10.1002/mgg3.1238
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author Jedličková, Ivana
Přistoupilová, Anna
Nosková, Lenka
Majer, Filip
Stránecký, Viktor
Hartmannová, Hana
Hodaňová, Kateřina
Trešlová, Helena
Hýblová, Michaela
Solár, Peter
Minárik, Gabriel
Giertlová, Mária
Kmoch, Stanislav
author_facet Jedličková, Ivana
Přistoupilová, Anna
Nosková, Lenka
Majer, Filip
Stránecký, Viktor
Hartmannová, Hana
Hodaňová, Kateřina
Trešlová, Helena
Hýblová, Michaela
Solár, Peter
Minárik, Gabriel
Giertlová, Mária
Kmoch, Stanislav
author_sort Jedličková, Ivana
collection PubMed
description BACKGROUND: Spinal muscular atrophy (SMA) is an inherited neuromuscular disease affecting 1 in 8,000 newborns. The majority of patients carry bi‐allelic variants in the survival of motor neuron 1 gene (SMN1). SMN1 is located in a duplicated region on chromosome 5q13 that contains Alu elements and is predisposed to genomic rearrangements. Due to the genomic complexity of the SMN region and genetic heterogeneity, approximately 50% of SMA patients remain without genetic diagnosis that is a prerequisite for genetic treatments. In this work we describe the diagnostic odyssey of one SMA patient in whom routine diagnostics identified only a maternal heterozygous SMN1Δ(7–8) deletion. METHODS: We characterized SMN transcripts, assessed SMN protein content in peripheral blood mononuclear cells (PBMC), estimated SMN genes dosage, and mapped genomic rearrangement in the SMN region. RESULTS: We identified an Alu‐mediated deletion encompassing exons 2a‐5 of SMN1 on the paternal allele and a complete deletion of SMN1 on the maternal allele as the cause of SMA in this patient. CONCLUSION: Alu‐mediated rearrangements in SMN1 can escape routine diagnostic testing. Parallel analysis of SMN gene dosage, SMN transcripts, and total SMN protein levels in PBMC can identify genomic rearrangements and should be considered in genetically undefined SMA cases.
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spelling pubmed-73367252020-07-08 Spinal muscular atrophy caused by a novel Alu‐mediated deletion of exons 2a‐5 in SMN1 undetectable with routine genetic testing Jedličková, Ivana Přistoupilová, Anna Nosková, Lenka Majer, Filip Stránecký, Viktor Hartmannová, Hana Hodaňová, Kateřina Trešlová, Helena Hýblová, Michaela Solár, Peter Minárik, Gabriel Giertlová, Mária Kmoch, Stanislav Mol Genet Genomic Med Clinical Reports BACKGROUND: Spinal muscular atrophy (SMA) is an inherited neuromuscular disease affecting 1 in 8,000 newborns. The majority of patients carry bi‐allelic variants in the survival of motor neuron 1 gene (SMN1). SMN1 is located in a duplicated region on chromosome 5q13 that contains Alu elements and is predisposed to genomic rearrangements. Due to the genomic complexity of the SMN region and genetic heterogeneity, approximately 50% of SMA patients remain without genetic diagnosis that is a prerequisite for genetic treatments. In this work we describe the diagnostic odyssey of one SMA patient in whom routine diagnostics identified only a maternal heterozygous SMN1Δ(7–8) deletion. METHODS: We characterized SMN transcripts, assessed SMN protein content in peripheral blood mononuclear cells (PBMC), estimated SMN genes dosage, and mapped genomic rearrangement in the SMN region. RESULTS: We identified an Alu‐mediated deletion encompassing exons 2a‐5 of SMN1 on the paternal allele and a complete deletion of SMN1 on the maternal allele as the cause of SMA in this patient. CONCLUSION: Alu‐mediated rearrangements in SMN1 can escape routine diagnostic testing. Parallel analysis of SMN gene dosage, SMN transcripts, and total SMN protein levels in PBMC can identify genomic rearrangements and should be considered in genetically undefined SMA cases. John Wiley and Sons Inc. 2020-04-26 /pmc/articles/PMC7336725/ /pubmed/32337852 http://dx.doi.org/10.1002/mgg3.1238 Text en © 2020 The Authors. Molecular Genetics & Genomic Medicine published by Wiley Periodicals LLC This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Clinical Reports
Jedličková, Ivana
Přistoupilová, Anna
Nosková, Lenka
Majer, Filip
Stránecký, Viktor
Hartmannová, Hana
Hodaňová, Kateřina
Trešlová, Helena
Hýblová, Michaela
Solár, Peter
Minárik, Gabriel
Giertlová, Mária
Kmoch, Stanislav
Spinal muscular atrophy caused by a novel Alu‐mediated deletion of exons 2a‐5 in SMN1 undetectable with routine genetic testing
title Spinal muscular atrophy caused by a novel Alu‐mediated deletion of exons 2a‐5 in SMN1 undetectable with routine genetic testing
title_full Spinal muscular atrophy caused by a novel Alu‐mediated deletion of exons 2a‐5 in SMN1 undetectable with routine genetic testing
title_fullStr Spinal muscular atrophy caused by a novel Alu‐mediated deletion of exons 2a‐5 in SMN1 undetectable with routine genetic testing
title_full_unstemmed Spinal muscular atrophy caused by a novel Alu‐mediated deletion of exons 2a‐5 in SMN1 undetectable with routine genetic testing
title_short Spinal muscular atrophy caused by a novel Alu‐mediated deletion of exons 2a‐5 in SMN1 undetectable with routine genetic testing
title_sort spinal muscular atrophy caused by a novel alu‐mediated deletion of exons 2a‐5 in smn1 undetectable with routine genetic testing
topic Clinical Reports
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7336725/
https://www.ncbi.nlm.nih.gov/pubmed/32337852
http://dx.doi.org/10.1002/mgg3.1238
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