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Published on: September 25, 2017
N-nitroso-N-ethylurea activates DNA damage surveillance pathways and induces transformation in mammalian cells
Satish Bodakuntla, Anandi V Libi, Surojit Sural
1Indian Institute of Science Education and Research, Pune, Maharashtra 411008, India. mayurika.lahiri@iiserpune.ac.in.
Background:
The DNA damage checkpoint signalling cascade sense damaged DNA and coordinates cell cycle arrest, DNA repair, and/or apoptosis. However, it is still not well understood how the signalling system differentiates between different kinds of DNA damage. N-nitroso-N-ethylurea (NEU), a DNA ethylating agent induces both transversions and transition mutations.
Methods:
Immunoblot and comet assays were performed to detect DNA breaks and activation of the canonical checkpoint signalling kinases following NEU damage upto 2 hours. To investigate whether mismatch repair played a role in checkpoint activation, knock-down studies were performed while flow cytometry analysis was done to understand whether the activation of the checkpoint kinases was cell cycle phase specific. Finally, breast epithelial cells were grown as 3-dimensional spheroid cultures to study whether NEU can induce upregulation of vimentin as well as disrupt cell polarity of the breast acini, thus causing transformation of epithelial cells in culture.
Results:
We report a novel finding that NEU causes activation of major checkpoint signalling kinases, Chk1 and Chk2. This activation is temporally controlled with Chk2 activation preceding Chk1 phosphorylation, and absence of cross talk between the two parallel signalling pathways, ATM and ATR. Damage caused by NEU leads to the temporal formation of both double strand and single strand breaks. Activation of checkpoints following NEU damage is cell cycle phase dependent wherein Chk2 is primarily activated during G2-M phase whilst in S phase, there is immediate Chk1 phosphorylation and delayed Chk2 response. Surprisingly, the mismatch repair system does not play a role in checkpoint activation, at doses and duration of NEU used in the experiments. Interestingly, NEU caused disruption of the well-formed polarised spheroid archithecture and upregulation of vimentin in three-dimensional breast acini cultures of non-malignant breast epithelial cells upon NEU treatment indicating NEU to have the potential to cause early transformation in the cells.
Conclusion:
NEU causes damage in mammalian cells in the form of double strand and single strand breaks that temporally activate the major checkpoint signalling kinases without the occurrence of cross-talk between the pathways. NEU also appear to cause transformation in three-dimensional spheroid cultures.
Insights
N-nitroso-N-ethylurea (NEU) causes DNA damage, activating checkpoint kinases Chk1 and Chk2 in a cell cycle-dependent manner. NEU also induces early transformation in breast cells, suggesting potential carcinogenic effects.
Area of Science:
- Cellular Biology
- Molecular Biology
- Cancer Research
Background:
- The DNA damage response (DDR) pathway is crucial for maintaining genomic stability by coordinating cell cycle arrest, DNA repair, and apoptosis.
- Understanding how DDR pathways differentiate between various DNA lesions remains a key challenge.
- N-nitroso-N-ethylurea (NEU) is a chemical mutagen known to induce both transition and transversion mutations.
Purpose of the Study:
- To investigate the DNA damage response to N-nitroso-N-ethylurea (NEU) in mammalian cells.
- To elucidate the role of checkpoint kinases Chk1 and Chk2 in response to NEU-induced DNA damage.
- To examine the potential of NEU to induce cellular transformation in 3D breast cell cultures.
Main Methods:
- Immunoblot and comet assays were used to detect DNA breaks and kinase activation.
- Knock-down studies assessed the involvement of mismatch repair.
- Flow cytometry analyzed cell cycle phase specificity of checkpoint activation.
- 3D spheroid cultures of breast epithelial cells evaluated NEU's effect on polarity and vimentin expression.
Main Results:
- NEU treatment activated major checkpoint kinases Chk1 and Chk2, with Chk2 activation preceding Chk1.
- DNA damage by NEU resulted in both single and double-strand breaks.
- Checkpoint activation was cell cycle-dependent, with distinct Chk1 and Chk2 responses in S and G2-M phases.
- Mismatch repair did not appear to play a role in checkpoint activation under the experimental conditions.
- NEU disrupted polarity and upregulated vimentin in 3D breast acini, indicating early transformation potential.
Conclusions:
- NEU induces double and single-strand DNA breaks, leading to temporally regulated activation of Chk1 and Chk2 without pathway cross-talk.
- NEU demonstrates potential to induce early cellular transformation in 3D breast spheroid cultures.
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