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Exercise-induced mitochondrial p53 repairs mtDNA mutations in mutator mice.
- Source :
-
Skeletal muscle [Skelet Muscle] 2016 Jan 31; Vol. 6, pp. 7. Date of Electronic Publication: 2016 Jan 31 (Print Publication: 2016). - Publication Year :
- 2016
-
Abstract
- Background: Human genetic disorders and transgenic mouse models have shown that mitochondrial DNA (mtDNA) mutations and telomere dysfunction instigate the aging process. Epidemiologically, exercise is associated with greater life expectancy and reduced risk of chronic diseases. While the beneficial effects of exercise are well established, the molecular mechanisms instigating these observations remain unclear.<br />Results: Endurance exercise reduces mtDNA mutation burden, alleviates multisystem pathology, and increases lifespan of the mutator mice, with proofreading deficient mitochondrial polymerase gamma (POLG1). We report evidence for a POLG1-independent mtDNA repair pathway mediated by exercise, a surprising notion as POLG1 is canonically considered to be the sole mtDNA repair enzyme. Here, we show that the tumor suppressor protein p53 translocates to mitochondria and facilitates mtDNA mutation repair and mitochondrial biogenesis in response to endurance exercise. Indeed, in mutator mice with muscle-specific deletion of p53, exercise failed to prevent mtDNA mutations, induce mitochondrial biogenesis, preserve mitochondrial morphology, reverse sarcopenia, or mitigate premature mortality.<br />Conclusions: Our data establish a new role for p53 in exercise-mediated maintenance of the mtDNA genome and present mitochondrially targeted p53 as a novel therapeutic modality for diseases of mitochondrial etiology.
- Subjects :
- Animals
Apoptosis
Cells, Cultured
DNA Polymerase gamma
DNA, Mitochondrial metabolism
DNA-Directed DNA Polymerase genetics
Genotype
Life Expectancy
Mice, Inbred C57BL
Mice, Knockout
Mice, Mutant Strains
Mitochondria, Heart pathology
Mitochondria, Muscle pathology
Muscle, Skeletal pathology
Myocardial Contraction
Myocardium pathology
Organelle Biogenesis
Oxidative Stress
Phenotype
Protein Transport
Telomere genetics
Telomere metabolism
Telomere Homeostasis
Time Factors
Transfection
Tumor Suppressor Protein p53 deficiency
Tumor Suppressor Protein p53 genetics
DNA Repair
DNA, Mitochondrial genetics
Mitochondria, Heart metabolism
Mitochondria, Muscle metabolism
Muscle Contraction
Muscle, Skeletal metabolism
Mutation
Myocardium metabolism
Tumor Suppressor Protein p53 metabolism
Subjects
Details
- Language :
- English
- ISSN :
- 2044-5040
- Volume :
- 6
- Database :
- MEDLINE
- Journal :
- Skeletal muscle
- Publication Type :
- Academic Journal
- Accession number :
- 26834962
- Full Text :
- https://doi.org/10.1186/s13395-016-0075-9