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Updated: Jul 5, 2026

Visualizing and Quantifying Endonuclease-Based Site-Specific DNA Damage
Published on: August 21, 2021
DNA synthesis from unbalanced nucleotide pools causes limited DNA damage that triggers ATR-CHK1-dependent p53
Kedar Hastak1, Rajib K Paul, Mukesh K Agarwal
1Department of Genetics and Case Comprehensive Cancer Center, Case Western Reserve University, Cleveland, OH 44106, USA.
Abstract:
p53-dependent G(1) and G(2) cell cycle checkpoints are activated in response DNA damage that help to maintain genomic stability. p53 also helps to protect cells from damage that occurs during S phase, for example, when the cells are starved for DNA precursors or irradiated with a low dose of UV. p53 is activated in normal cells starved for pyrimidine nucleotides by treatment with N-(phosphonacetyl)-l-aspartate (PALA). The treated cells progress through a first S phase with kinetics similar to those of untreated cells. However, the DNA of the treated cells begins to become damaged rapidly, within 12 h, as revealed by a comet assay, which detects broken DNA, and by staining for phosphorylated histone H2AX, which accumulates at sites of DNA damage. Because the cells survive, the damage must be reversible, suggesting single-strand breaks or gaps as the most likely possibility. The transiently damaged DNA stimulates activation of ATR and CHK1, which in turn catalyze the phosphorylation and accumulation of p53. Although PALA-induced DNA damage occurs only in dividing cells, the p53 that is activated is only competent to transcribe genes such as p21 and macrophage inhibitory cytokine 1 (whose products regulate G(2) and G(1) or S phase checkpoints, respectively) after the cells have exited the S phase during which damage occurs. We propose that p53 is activated by stimulation of mismatch repair in response to the misincorporation of deoxynucleotides into newly synthesized DNA, long before the lack of pyrimidine nucleoside triphosphates causes the rate of DNA synthesis to slow appreciably.
Insights
p53 activation protects genomic stability during S phase. DNA damage from pyrimidine starvation activates p53, which then regulates cell cycle checkpoints after S phase exit.
Area of Science:
- Molecular Biology
- Cell Cycle Regulation
- DNA Damage Response
Background:
- p53-dependent cell cycle checkpoints (G1 and G2) maintain genomic stability.
- p53 protects cells during S phase from DNA damage, such as that caused by UV radiation or depleted DNA precursors.
- Pyrimidine nucleotide starvation can induce DNA damage and activate p53.
Purpose of the Study:
- To investigate the mechanism of p53 activation during S phase DNA damage induced by pyrimidine starvation.
- To understand how p53 regulates cell cycle checkpoints in response to transient DNA damage.
Main Methods:
- Treatment of normal cells with N-(phosphonacetyl)-l-aspartate (PALA) to induce pyrimidine starvation.
- Comet assay and phosphorylated histone H2AX staining to detect DNA damage.
- Analysis of ATR, CHK1, and p53 activation and downstream gene transcription (p21, macrophage inhibitory cytokine 1).
Main Results:
- PALA treatment caused rapid, reversible DNA damage (single-strand breaks or gaps) within 12 hours.
- Transient DNA damage activated ATR and CHK1, leading to p53 phosphorylation and accumulation.
- Activated p53 mediated transcription of G1/S and G2 checkpoint genes only after cells exited the S phase.
Conclusions:
- p53 is activated by mismatch repair stimulation due to deoxynucleotide misincorporation during DNA synthesis.
- This activation precedes significant slowing of DNA synthesis caused by nucleotide depletion.
- p53 plays a crucial role in managing S phase DNA damage and maintaining genomic integrity.
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