Transcriptomic profiling of TK2 deficient human skeletal muscle suggests a role for the p53 signalling pathway and identifies growth and differentiation factor-15 as a potential novel biomarker for mitochondrial myopathies

dc.contributor.author
Kalko, Susana
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Paco Mercader, Sonia
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Jou, Cristina
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Rodríguez, María Angeles
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Meznaric, Marija
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Rogac, Mihael
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Jekovec-Vrhovsek, Maja
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Sciacco, Monica
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Moggio, Maurizio
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Fagiolari, Gigliola
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De Paepe, Boel
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De Meirleir, Linda
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Ferrer, Isidro (Ferrer Abizanda)
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Roig Quilis, Manuel
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Munell Casadesús, Francina
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Montoya, Julio
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López Gallardo, Ester
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Ruiz Pesini, Eduardo
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Artuch Iriberri, Rafael
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Montero Sánchez, Raquel
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Torner Rubies, Ferran
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Nascimento, Andrés
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Ortez, Carlos Ignacio
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Colomer Oferil, Jaume
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Jiménez Mallebrera, Cecilia
dc.date.issued
2017-07-10T11:53:24Z
dc.date.issued
2017-07-10T11:53:24Z
dc.date.issued
2014-02-01
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2017-07-10T11:53:24Z
dc.identifier
1471-2164
dc.identifier
https://hdl.handle.net/2445/113597
dc.identifier
647634
dc.identifier
24484525
dc.description.abstract
BACKGROUND: Mutations in the gene encoding thymidine kinase 2 (TK2) result in the myopathic form of mitochondrial DNA depletion syndrome which is a mitochondrial encephalomyopathy presenting in children. In order to unveil some of the mechanisms involved in this pathology and to identify potential biomarkers and therapeutic targets we have investigated the gene expression profile of human skeletal muscle deficient for TK2 using cDNA microarrays. RESULTS: We have analysed the whole transcriptome of skeletal muscle from patients with TK2 mutations and compared it to normal muscle and to muscle from patients with other mitochondrial myopathies. We have identified a set of over 700 genes which are differentially expressed in TK2 deficient muscle. Bioinformatics analysis reveals important changes in muscle metabolism, in particular, in glucose and glycogen utilisation, and activation of the starvation response which affects aminoacid and lipid metabolism. We have identified those transcriptional regulators which are likely to be responsible for the observed changes in gene expression. CONCLUSION: Our data point towards the tumor suppressor p53 as the regulator at the centre of a network of genes which are responsible for a coordinated response to TK2 mutations which involves inflammation, activation of muscle cell death by apoptosis and induction of growth and differentiation factor 15 (GDF-15) in muscle and serum. We propose that GDF-15 may represent a potential novel biomarker for mitochondrial dysfunction although further studies are required.
dc.format
22 p.
dc.format
application/pdf
dc.language
eng
dc.publisher
BioMed Central
dc.relation
Reproducció del document publicat a: https://doi.org/10.1186/1471-2164-15-91
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Bmc Genomics, 2014, num. 15, p. 91
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https://doi.org/10.1186/1471-2164-15-91
dc.rights
cc-by (c) Kalko, Susana et al., 2014
dc.rights
http://creativecommons.org/licenses/by/3.0/es
dc.rights
info:eu-repo/semantics/openAccess
dc.source
Articles publicats en revistes (Patologia i Terapèutica Experimental)
dc.subject
Expressió gènica
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Bioinformàtica
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Microxips d'ADN
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ADN mitocondrial
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Apoptosi
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Malalties del sistema nerviós central
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Infants
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Gene expression
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Bioinformatics
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DNA microarrays
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Mitochondrial DNA
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Apoptosis
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Central nervous system diseases
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Children
dc.title
Transcriptomic profiling of TK2 deficient human skeletal muscle suggests a role for the p53 signalling pathway and identifies growth and differentiation factor-15 as a potential novel biomarker for mitochondrial myopathies
dc.type
info:eu-repo/semantics/article
dc.type
info:eu-repo/semantics/publishedVersion


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