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Updated: Jul 12, 2026

Two- and Three-Dimensional Live Cell Imaging of DNA Damage Response Proteins
Published on: September 28, 2012
Human p53 directs DNA strand reassociation and is photolabelled by 8-azido ATP
1Cell Proliferation Laboratory, Marie Curie Research Institute, The Chart, Oxted, Surrey.
Abstract:
p53 is the most frequent known target for mutation in human cancer. Evidence suggests that p53 protein may be involved variously in transcription and cell cycle control, in DNA replication and in G1 checkpoint control following the cellular response to radiation induced DNA damage. p53 blocks DNA replication of the small DNA tumour virus, simian virus 40, by inhibiting unwinding of the viral origin of replication by the DNA helicase activity of the virally encoded large T antigen protein. Here we report the novel observation that human p53 protein can bind ATP and exhibits an intrinsic ATP stimulated DNA strand reassociation activity. Both activities map to the carboxyl terminal 128 amino acids of p53. Thus, in addition to any role in transcription, our results indicate that p53 is potentially capable of inhibiting mammalian replicative DNA synthesis by blocking the DNA strand separation step during replication origin recruitment. However, the ability of p53 to modulate the topological relationship between complementary nucleotide strands is also compatible with a direct role for p53 in other aspects of DNA synthesis, recombination or repair.
Insights
The tumor suppressor protein p53 binds ATP and promotes DNA strand reassociation. This suggests p53 may inhibit DNA replication by blocking strand separation during origin binding.
Area of Science:
- Molecular Biology
- Cancer Research
- Biochemistry
Background:
- The p53 protein is frequently mutated in human cancers.
- p53 is implicated in transcription, cell cycle control, and DNA damage response.
- p53 inhibits simian virus 40 DNA replication by interfering with viral DNA helicase activity.
Purpose of the Study:
- To investigate novel biochemical activities of human p53 protein.
- To determine the role of p53 in DNA replication and related processes.
Main Methods:
- Biochemical assays to detect ATP binding by p53.
- DNA strand reassociation assays to assess p53's effect on DNA.
- Mapping of functional domains within the p53 protein.
Main Results:
- Human p53 protein was found to bind ATP.
- p53 exhibits intrinsic ATP-stimulated DNA strand reassociation activity.
- These activities are localized to the carboxyl-terminal 128 amino acids of p53.
Conclusions:
- p53's DNA strand reassociation activity suggests a novel mechanism for inhibiting DNA replication.
- p53 may impede mammalian DNA synthesis by blocking strand separation at replication origins.
- p53's DNA binding properties may also be relevant to DNA repair and recombination.
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