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Updated: Feb 10, 2026

Studying Age-dependent Genomic Instability using the S. cerevisiae Chronological Lifespan Model
Published on: September 29, 2011
Spontaneous DNA damage to the nuclear genome promotes senescence, redox imbalance and aging
Andria R Robinson1, Matthew J Yousefzadeh2, Tania A Rozgaja2
1Department of Human Genetics, University of Pittsburgh Graduate School of Public Health, Pittsburgh, PA 15261, USA; University of Pittsburgh Medical Center, Hillman Cancer Center, Pittsburgh, PA 15232, USA; Department of Microbiology and Molecular Genetics, University of Pittsburgh School of Medicine, Pittsburgh, PA 15219, USA.
Abstract:
Accumulation of senescent cells over time contributes to aging and age-related diseases. However, what drives senescence in vivo is not clear. Here we used a genetic approach to determine if spontaneous nuclear DNA damage is sufficient to initiate senescence in mammals. Ercc1-/∆ mice with reduced expression of ERCC1-XPF endonuclease have impaired capacity to repair the nuclear genome. Ercc1-/∆ mice accumulated spontaneous, oxidative DNA damage more rapidly than wild-type (WT) mice. As a consequence, senescent cells accumulated more rapidly in Ercc1-/∆ mice compared to repair-competent animals. However, the levels of DNA damage and senescent cells in Ercc1-/∆ mice never exceeded that observed in old WT mice. Surprisingly, levels of reactive oxygen species (ROS) were increased in tissues of Ercc1-/∆ mice to an extent identical to naturally-aged WT mice. Increased enzymatic production of ROS and decreased antioxidants contributed to the elevation in oxidative stress in both Ercc1-/∆ and aged WT mice. Chronic treatment of Ercc1-/∆ mice with the mitochondrial-targeted radical scavenger XJB-5-131 attenuated oxidative DNA damage, senescence and age-related pathology. Our findings indicate that nuclear genotoxic stress arises, at least in part, due to mitochondrial-derived ROS, and this spontaneous DNA damage is sufficient to drive increased levels of ROS, cellular senescence, and the consequent age-related physiological decline.
Insights
Spontaneous DNA damage, driven by mitochondrial reactive oxygen species (ROS), initiates cellular senescence and age-related decline in mammals. Repairing this damage can mitigate aging pathologies.
Area of Science:
- Genetics
- Molecular Biology
- Aging Research
Background:
- Cellular senescence accumulates with age, contributing to age-related diseases.
- The in vivo drivers of senescence remain incompletely understood.
Purpose of the Study:
- To investigate if spontaneous nuclear DNA damage is sufficient to trigger senescence in mammals.
- To elucidate the role of mitochondrial-derived reactive oxygen species (ROS) in driving DNA damage and senescence.
Main Methods:
- Utilized Ercc1-/∆ mice with impaired DNA repair capacity to model spontaneous DNA damage.
- Assessed levels of DNA damage, cellular senescence, reactive oxygen species (ROS), and age-related pathology.
- Administered a mitochondrial-targeted radical scavenger (XJB-5-131) to Ercc1-/∆ mice.
Main Results:
- Ercc1-/∆ mice exhibited accelerated accumulation of oxidative DNA damage and senescent cells compared to wild-type (WT) mice.
- Mitochondrial-derived ROS and reduced antioxidants increased oxidative stress in both Ercc1-/∆ and aged WT mice.
- Treatment with XJB-5-131 reduced DNA damage, senescence, and age-related pathology in Ercc1-/∆ mice.
Conclusions:
- Spontaneous nuclear DNA damage, partly driven by mitochondrial ROS, is sufficient to induce cellular senescence.
- Mitochondrial dysfunction contributes significantly to age-related oxidative stress and DNA damage.
- Targeting mitochondrial ROS offers a potential therapeutic strategy for age-related decline.
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