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Mitochondrial Dysfunction Reveals the Role of mRNA Poly(A) Tail Regulation in Oculopharyngeal Muscular Dystrophy Pathogenesis

Oculopharyngeal muscular dystrophy (OPMD), a late-onset disorder characterized by progressive degeneration of specific muscles, results from the extension of a polyalanine tract in poly(A) binding protein nuclear 1 (PABPN1). While the roles of PABPN1 in nuclear polyadenylation and regulation of alte...

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Autores principales: Chartier, Aymeric, Klein, Pierre, Pierson, Stéphanie, Barbezier, Nicolas, Gidaro, Teresa, Casas, François, Carberry, Steven, Dowling, Paul, Maynadier, Laurie, Bellec, Maëlle, Oloko, Martine, Jardel, Claude, Moritz, Bodo, Dickson, George, Mouly, Vincent, Ohlendieck, Kay, Butler-Browne, Gillian, Trollet, Capucine, Simonelig, Martine
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4376527/
https://www.ncbi.nlm.nih.gov/pubmed/25816335
http://dx.doi.org/10.1371/journal.pgen.1005092
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author Chartier, Aymeric
Klein, Pierre
Pierson, Stéphanie
Barbezier, Nicolas
Gidaro, Teresa
Casas, François
Carberry, Steven
Dowling, Paul
Maynadier, Laurie
Bellec, Maëlle
Oloko, Martine
Jardel, Claude
Moritz, Bodo
Dickson, George
Mouly, Vincent
Ohlendieck, Kay
Butler-Browne, Gillian
Trollet, Capucine
Simonelig, Martine
author_facet Chartier, Aymeric
Klein, Pierre
Pierson, Stéphanie
Barbezier, Nicolas
Gidaro, Teresa
Casas, François
Carberry, Steven
Dowling, Paul
Maynadier, Laurie
Bellec, Maëlle
Oloko, Martine
Jardel, Claude
Moritz, Bodo
Dickson, George
Mouly, Vincent
Ohlendieck, Kay
Butler-Browne, Gillian
Trollet, Capucine
Simonelig, Martine
author_sort Chartier, Aymeric
collection PubMed
description Oculopharyngeal muscular dystrophy (OPMD), a late-onset disorder characterized by progressive degeneration of specific muscles, results from the extension of a polyalanine tract in poly(A) binding protein nuclear 1 (PABPN1). While the roles of PABPN1 in nuclear polyadenylation and regulation of alternative poly(A) site choice are established, the molecular mechanisms behind OPMD remain undetermined. Here, we show, using Drosophila and mouse models, that OPMD pathogenesis depends on affected poly(A) tail lengths of specific mRNAs. We identify a set of mRNAs encoding mitochondrial proteins that are down-regulated starting at the earliest stages of OPMD progression. The down-regulation of these mRNAs correlates with their shortened poly(A) tails and partial rescue of their levels when deadenylation is genetically reduced improves muscle function. Genetic analysis of candidate genes encoding RNA binding proteins using the Drosophila OPMD model uncovers a potential role of a number of them. We focus on the deadenylation regulator Smaug and show that it is expressed in adult muscles and specifically binds to the down-regulated mRNAs. In addition, the first step of the cleavage and polyadenylation reaction, mRNA cleavage, is affected in muscles expressing alanine-expanded PABPN1. We propose that impaired cleavage during nuclear cleavage/polyadenylation is an early defect in OPMD. This defect followed by active deadenylation of specific mRNAs, involving Smaug and the CCR4-NOT deadenylation complex, leads to their destabilization and mitochondrial dysfunction. These results broaden our understanding of the role of mRNA regulation in pathologies and might help to understand the molecular mechanisms underlying neurodegenerative disorders that involve mitochondrial dysfunction.
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spelling pubmed-43765272015-04-04 Mitochondrial Dysfunction Reveals the Role of mRNA Poly(A) Tail Regulation in Oculopharyngeal Muscular Dystrophy Pathogenesis Chartier, Aymeric Klein, Pierre Pierson, Stéphanie Barbezier, Nicolas Gidaro, Teresa Casas, François Carberry, Steven Dowling, Paul Maynadier, Laurie Bellec, Maëlle Oloko, Martine Jardel, Claude Moritz, Bodo Dickson, George Mouly, Vincent Ohlendieck, Kay Butler-Browne, Gillian Trollet, Capucine Simonelig, Martine PLoS Genet Research Article Oculopharyngeal muscular dystrophy (OPMD), a late-onset disorder characterized by progressive degeneration of specific muscles, results from the extension of a polyalanine tract in poly(A) binding protein nuclear 1 (PABPN1). While the roles of PABPN1 in nuclear polyadenylation and regulation of alternative poly(A) site choice are established, the molecular mechanisms behind OPMD remain undetermined. Here, we show, using Drosophila and mouse models, that OPMD pathogenesis depends on affected poly(A) tail lengths of specific mRNAs. We identify a set of mRNAs encoding mitochondrial proteins that are down-regulated starting at the earliest stages of OPMD progression. The down-regulation of these mRNAs correlates with their shortened poly(A) tails and partial rescue of their levels when deadenylation is genetically reduced improves muscle function. Genetic analysis of candidate genes encoding RNA binding proteins using the Drosophila OPMD model uncovers a potential role of a number of them. We focus on the deadenylation regulator Smaug and show that it is expressed in adult muscles and specifically binds to the down-regulated mRNAs. In addition, the first step of the cleavage and polyadenylation reaction, mRNA cleavage, is affected in muscles expressing alanine-expanded PABPN1. We propose that impaired cleavage during nuclear cleavage/polyadenylation is an early defect in OPMD. This defect followed by active deadenylation of specific mRNAs, involving Smaug and the CCR4-NOT deadenylation complex, leads to their destabilization and mitochondrial dysfunction. These results broaden our understanding of the role of mRNA regulation in pathologies and might help to understand the molecular mechanisms underlying neurodegenerative disorders that involve mitochondrial dysfunction. Public Library of Science 2015-03-27 /pmc/articles/PMC4376527/ /pubmed/25816335 http://dx.doi.org/10.1371/journal.pgen.1005092 Text en © 2015 Chartier et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Chartier, Aymeric
Klein, Pierre
Pierson, Stéphanie
Barbezier, Nicolas
Gidaro, Teresa
Casas, François
Carberry, Steven
Dowling, Paul
Maynadier, Laurie
Bellec, Maëlle
Oloko, Martine
Jardel, Claude
Moritz, Bodo
Dickson, George
Mouly, Vincent
Ohlendieck, Kay
Butler-Browne, Gillian
Trollet, Capucine
Simonelig, Martine
Mitochondrial Dysfunction Reveals the Role of mRNA Poly(A) Tail Regulation in Oculopharyngeal Muscular Dystrophy Pathogenesis
title Mitochondrial Dysfunction Reveals the Role of mRNA Poly(A) Tail Regulation in Oculopharyngeal Muscular Dystrophy Pathogenesis
title_full Mitochondrial Dysfunction Reveals the Role of mRNA Poly(A) Tail Regulation in Oculopharyngeal Muscular Dystrophy Pathogenesis
title_fullStr Mitochondrial Dysfunction Reveals the Role of mRNA Poly(A) Tail Regulation in Oculopharyngeal Muscular Dystrophy Pathogenesis
title_full_unstemmed Mitochondrial Dysfunction Reveals the Role of mRNA Poly(A) Tail Regulation in Oculopharyngeal Muscular Dystrophy Pathogenesis
title_short Mitochondrial Dysfunction Reveals the Role of mRNA Poly(A) Tail Regulation in Oculopharyngeal Muscular Dystrophy Pathogenesis
title_sort mitochondrial dysfunction reveals the role of mrna poly(a) tail regulation in oculopharyngeal muscular dystrophy pathogenesis
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4376527/
https://www.ncbi.nlm.nih.gov/pubmed/25816335
http://dx.doi.org/10.1371/journal.pgen.1005092
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