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Updated: Jan 20, 2026

Assessment of Oxidative Damage in the Primary Mouse Ocular Surface Cells/Stem Cells in Response to Ultraviolet-C UV-C Damage
Published on: February 15, 2020
Autophagy: A Player in response to Oxidative Stress and DNA Damage
Serena Galati1,2, Christian Boni3, Maria Carla Gerra4
1Centre for Molecular and Translational Oncology-COMT, University of Parma, Parma 43124, Italy.
Abstract:
Autophagy is a catabolic pathway activated in response to different cellular stressors, such as damaged organelles, accumulation of misfolded or unfolded proteins, ER stress, accumulation of reactive oxygen species, and DNA damage. Some DNA damage sensors like FOXO3a, ATM, ATR, and p53 are known to be important autophagy regulators, and autophagy seems therefore to have a role in DNA damage response (DDR). Recent studies have partly clarified the pathways that induce autophagy during DDR, but its precise role is still not well known. Previous studies have shown that autophagy alterations induce an increase in DNA damage and in the occurrence of tumor and neurodegenerative diseases, highlighting its fundamental role in the maintenance of genomic stability. During DDR, autophagy could act as a source of energy to maintain cell cycle arrest and to sustain DNA repair activities. In addition, autophagy seems to play a role in the degradation of components involved in the repair machinery. In this paper, molecules which are able to induce oxidative stress and/or DNA damage have been selected and their toxic and genotoxic effects on the U937 cell line have been assessed in the presence of the single compounds and in concurrence with an inhibitor (chloroquine) or an inducer (rapamycin) of autophagy. Our data seem to corroborate the fundamental role of this pathway in response to direct and indirect DNA-damaging agents. The inhibition of autophagy through chloroquine had no effect on the genotoxicity induced by the tested compounds, but it led to a high increase of cytotoxicity. The induction of autophagy, through cotreatment with rapamycin, reduced the genotoxic activity of the compounds. The present study confirms the cytoprotective role of autophagy during DDR; its inhibition can sensitize cancer cells to DNA-damaging agents. The modulation of this pathway could therefore be an innovative approach able to reduce the toxicity of many compounds and to enhance the activity of others, including anticancer drugs.
Insights
Autophagy protects cells from DNA damage by providing energy and aiding repair. Inducing autophagy reduces genotoxicity, while inhibiting it increases cytotoxicity, highlighting its cytoprotective role in DNA damage response.
Area of Science:
- Cellular Biology
- Molecular Biology
- Genetics
Background:
- Autophagy is a cellular degradation process crucial for responding to various stressors, including DNA damage.
- While DNA damage sensors like FOXO3a, ATM, ATR, and p53 regulate autophagy, its exact role in the DNA damage response (DDR) remains under investigation.
- Autophagy dysfunction is linked to increased DNA damage, genomic instability, and diseases like cancer and neurodegeneration.
Purpose of the Study:
- To investigate the role of autophagy in the cellular response to DNA-damaging agents.
- To assess the effects of autophagy modulation (inhibition and induction) on the cytotoxicity and genotoxicity of selected DNA-damaging compounds.
- To confirm the cytoprotective function of autophagy during DNA damage response.
Main Methods:
- Selected molecules inducing oxidative stress and/or DNA damage were tested on the U937 cell line.
- The toxic and genotoxic effects were evaluated with single compounds and in combination with an autophagy inhibitor (chloroquine) or inducer (rapamycin).
Main Results:
- Autophagy induction with rapamycin reduced the genotoxic effects of the tested compounds.
- Autophagy inhibition with chloroquine did not alter genotoxicity but significantly increased cytotoxicity.
- These findings support a critical role for autophagy in managing DNA damage.
Conclusions:
- Autophagy plays a cytoprotective role during DNA damage response, maintaining genomic stability.
- Inhibiting autophagy can sensitize cancer cells to DNA-damaging agents, suggesting therapeutic potential.
- Modulating autophagy offers a novel strategy to mitigate compound toxicity and enhance the efficacy of anticancer drugs.
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