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Visualizing and Quantifying Endonuclease-Based Site-Specific DNA Damage
Published on: August 21, 2021
Endopolyploid cells produced after severe genotoxic damage have the potential to repair DNA double strand breaks
Andrei Ivanov1, Mark S Cragg, Jekaterina Erenpreisa
1Cancer Research UK, Wessex Oncology Unit, Cancer Sciences Division, School of Medicine, Southampton University Hospital, Southampton SO16 6YD, UK.
Abstract:
p53 mutant tumour cells respond to genotoxic insults by bypassing G1 arrest and halting in G2. Following release from G2 arrest they undergo mitotic catastrophe, whereby mitotic cycling is suppressed, delayed apoptosis begins and endopolyploid cells are produced. The ability of these endopolyploid cells to participate in the restitution process is controversial. To facilitate recovery, these endopolyploid cells must repair the extensive DNA damage induced. DNA damage and its resolution were studied by observing the kinetics of gamma-H2AX foci formation and by comet assay analysis. Subsequently, the kinetics and distribution of Rad51 foci were studied as a measure of homologous recombination. Here we present evidence of the resolution of DNA damage in endopolyploid cells through a decrease of tail moment by comet assay and in the number of cells expressing gamma-H2AX foci. Rad51 foci expression reached a maximum in endopolyploid cells on days 5-6 after irradiation, when delayed apoptosis was maximal, indicating that cells were being selected for survival at this time. Furthermore, the proportion of Annexin-V-positive polyploid cells decreased as they continued ongoing rounds of DNA replication, suggesting endoreduplication is involved in selecting cells resistant to apoptosis. Our findings suggest that after severe genotoxic insult endopolyploid cells have a transient survival advantage that may contribute to radioresistance of tumours that undergo mitotic catastrophe.
Insights
p53 mutant cells surviving genotoxic insults form endopolyploid cells that repair DNA damage. These cells show a transient survival advantage, potentially contributing to tumor radioresistance after mitotic catastrophe.
Area of Science:
- Cell Biology
- Cancer Research
- Genetics
Background:
- p53 mutant tumor cells bypass G1 arrest and arrest in G2 after genotoxic insults.
- Mitotic catastrophe leads to suppressed cycling, delayed apoptosis, and endopolyploid cell formation.
- The role of endopolyploid cells in DNA damage repair and tumor recovery is debated.
Purpose of the Study:
- To investigate DNA damage resolution in endopolyploid cells.
- To assess the role of homologous recombination in endopolyploid cell survival.
- To determine if endopolyploid cells contribute to tumor radioresistance.
Main Methods:
- Comet assay to analyze DNA damage (tail moment).
- Gamma-H2AX foci formation to track DNA damage.
- Rad51 foci analysis to measure homologous recombination.
- Annexin-V staining to assess apoptosis.
Main Results:
- Endopolyploid cells showed reduced DNA damage (decreased comet assay tail moment and gamma-H2AX foci).
- Rad51 foci peaked in endopolyploid cells during maximal delayed apoptosis, indicating selection for survival.
- Decreased Annexin-V positivity in polyploid cells suggested endoreduplication confers apoptosis resistance.
Conclusions:
- Endopolyploid cells can resolve DNA damage after genotoxic insults.
- These cells exhibit a transient survival advantage via endoreduplication, contributing to apoptosis resistance.
- This survival mechanism may enhance tumor radioresistance in cases of mitotic catastrophe.
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