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Published on: May 29, 2019
Telomeric DNA induces p53-dependent reactive oxygen species and protects against oxidative damage
Margaret S Lee1, Mina Yaar, Mark S Eller
1Department of Dermatology, Boston University School of Medicine, Boston, MA 02118, USA.
Background:
Reactive oxygen species (ROS) are generated by cellular metabolism as well as by exogenous agents. While ROS can promote cellular senescence, they can also act as signaling molecules for processes that do not lead to senescence. Telomere homolog oligonucleotides (T-oligos) induce adaptive DNA damage responses including increased DNA repair capacity and these effects are mediated, at least in part, through p53.
Objective:
Studies were undertaken to determine whether such p53-mediated protective responses include enhanced antioxidant defenses.
Methods:
Normal human fibroblasts as well as R2F fibroblasts expressing wild type or dominant negative p53 were treated with an 11-base T-oligo, a complementary control oligo or diluents alone and then examined by western blot analysis, immunofluorescence microscopy and various biochemical assays.
Results:
We now report that T-oligo increases the level of the antioxidant enzymes superoxide dismutase 1 and 2 and protects cells from oxidative damage; and that telomere-based gammaH2AX (DNA damage) foci that form in response to T-oligos contain phosphorylated ATM and Chk2, proteins known to activate p53 and to mediate cell cycle arrest in response to oxidative stress. Further, T-oligo increases cellular ROS levels via a p53-dependent pathway, and these increases are abrogated by the NAD(P)H oxidase inhibitor diphenyliodonium chloride.
Conclusion:
These results suggest the existence of innate telomere-based protective responses that act to reduce oxidative damage to cells. T-oligo treatment induces the same responses and offers a new model for studying intracellular ROS signaling and the relationships between DNA damage, ROS, oxidative stress, and cellular defense mechanisms.
Insights
Telomere homolog oligonucleotides (T-oligos) enhance antioxidant defenses and protect cells from oxidative damage through a p53-dependent pathway. This study reveals innate telomere-based protective responses against cellular damage.
Area of Science:
- Cellular Biology
- Oxidative Stress Research
- DNA Damage Response
Background:
- Reactive oxygen species (ROS) are byproducts of cellular metabolism and external factors, influencing senescence and signaling.
- Telomere homolog oligonucleotides (T-oligos) activate adaptive DNA damage responses, including enhanced DNA repair, mediated by p53.
Purpose of the Study:
- To investigate if p53-mediated protective responses involve augmented antioxidant defenses.
- To explore the role of T-oligos in cellular antioxidant capacity and ROS signaling.
Main Methods:
- Human fibroblasts (normal and R2F with varying p53) were treated with T-oligos or control oligos.
- Analysis included western blots, immunofluorescence microscopy, and biochemical assays to assess cellular responses.
Main Results:
- T-oligos elevated antioxidant enzymes (superoxide dismutase 1 and 2), conferring protection against oxidative damage.
- T-oligo-induced DNA damage foci contained ATM and Chk2, implicating them in p53 activation and cell cycle arrest.
- Cellular ROS levels increased via a p53-dependent pathway, inhibited by diphenyliodonium chloride.
Conclusions:
- Findings suggest inherent telomere-based mechanisms that mitigate oxidative damage.
- T-oligo treatment mimics these responses, providing a model to study ROS signaling and the interplay of DNA damage, ROS, and cellular defenses.
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