Defects in mitochondrial DNA replication and oxidative damage in muscle of mtDNA mutator mice
Jill E Kolesar1, Adeel Safdar2, Arkan Abadi3
1Department of Animal Biology, University of Pennsylvania School of Veterinary Medicine, Philadelphia, PA 19104, USA.
Abstract:
A causal role for mitochondrial dysfunction in mammalian aging is supported by recent studies of the mtDNA mutator mouse ("PolG" mouse), which harbors a defect in the proofreading-exonuclease activity of mitochondrial DNA polymerase gamma. These mice exhibit accelerated aging phenotypes characteristic of human aging, including systemic mitochondrial dysfunction, exercise intolerance, alopecia and graying of hair, curvature of the spine, and premature mortality. While mitochondrial dysfunction has been shown to cause increased oxidative stress in many systems, several groups have suggested that PolG mutator mice show no markers of oxidative damage. These mice have been presented as proof that mitochondrial dysfunction is sufficient to accelerate aging without oxidative stress. In this study, by normalizing to mitochondrial content in enriched fractions we detected increased oxidative modification of protein and DNA in PolG skeletal muscle mitochondria. We separately developed novel methods that allow simultaneous direct measurement of mtDNA replication defects and oxidative damage. Using this approach, we find evidence that suggests PolG muscle mtDNA is indeed oxidatively damaged. We also observed a significant decrease in antioxidants and expression of mitochondrial biogenesis pathway components and DNA repair enzymes in these mice, indicating an association of maladaptive gene expression with the phenotypes observed in PolG mice. Together, these findings demonstrate the presence of oxidative damage associated with the premature aging-like phenotypes induced by mitochondrial dysfunction.
Insights
Mitochondrial dysfunction accelerates aging in mice, contrary to previous beliefs. This study reveals oxidative damage in these mice, linking it to premature aging and impaired mitochondrial function.
Area of Science:
- Mitochondrial Biology
- Aging Research
- Genetics
Background:
- Mitochondrial dysfunction is implicated in aging.
- The "PolG" mouse model exhibits accelerated aging phenotypes.
- Previous studies debated the role of oxidative stress in PolG mice.
Purpose of the Study:
- To investigate the presence of oxidative damage in PolG mouse skeletal muscle mitochondria.
- To determine if mitochondrial dysfunction causes aging without oxidative stress.
- To explore gene expression changes related to mitochondrial function and aging.
Main Methods:
- Enriched mitochondrial fractions were analyzed for oxidative modifications.
- Novel methods were developed for simultaneous measurement of mtDNA replication defects and oxidative damage.
- Gene expression of antioxidants, biogenesis pathways, and DNA repair enzymes was assessed.
Main Results:
- Increased oxidative modification of protein and DNA was detected in PolG skeletal muscle mitochondria.
- Evidence suggests skeletal muscle mitochondrial DNA (mtDNA) is oxidatively damaged.
- Decreased antioxidants, biogenesis, and DNA repair enzyme expression were observed, indicating maladaptive gene expression.
Conclusions:
- Mitochondrial dysfunction in PolG mice is associated with significant oxidative damage.
- Oxidative damage contributes to the premature aging phenotypes observed in these mice.
- Maladaptive gene expression is linked to mitochondrial dysfunction and accelerated aging.
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