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Updated: May 21, 2026

Detection and Visualization of DNA Damage-induced Protein Complexes in Suspension Cell Cultures Using the Proximity Ligation Assay
Published on: June 9, 2017
Regulation of the DNA damage response by p53 cofactors
Xiao-Peng Zhang1, Feng Liu, Wei Wang
1National Laboratory of Solid State Microstructures and Department of Physics, Nanjing University, Nanjing, China.
Abstract:
The selective expression of p53-targeted genes is central to the p53-mediated DNA damage response. It is affected by multiple factors including posttranslational modifications and cofactors of p53. Here, we proposed an integrated model of the p53 network to characterize how the cellular response is regulated by key cofactors of p53, Hzf and ASPP. We found that the sequential induction of Hzf and ASPP is crucial to a reliable cell-fate decision between survival and death. After DNA damage, activated p53 first induces Hzf, which promotes the expression of p21 to arrest the cell cycle and facilitate DNA repair. The cell recovers to normal proliferation after the damage is repaired. If the damage is beyond repair, Hzf is effectively degraded, and activated E2F1 induces ASPP, which promotes the expression of Bax to trigger apoptosis. Furthermore, interrupting the induction of Hzf or ASPP remarkably impairs the cellular function. We also proposed two schemes for the production of the unknown E3 ubiquitin ligase for Hzf degradation: it is induced by either E2F1 or p53. In both schemes, the sufficient degradation of Hzf is required for apoptosis induction. These results are in good agreement with experimental observations or are experimentally testable.
Insights
The p53 network uses cofactors Hzf and ASPP to decide cell fate after DNA damage. Sequential induction of Hzf and ASPP ensures proper cell survival or apoptosis signaling.
Area of Science:
- Molecular Biology
- Cell Biology
- Genetics
Background:
- The p53 protein network is crucial for DNA damage response.
- Gene expression is regulated by p53 cofactors, posttranslational modifications, and cellular environment.
Purpose of the Study:
- To model the p53 network, focusing on cofactor regulation.
- To analyze the roles of Hzf and ASPP in cell-fate determination after DNA damage.
Main Methods:
- Computational modeling of the p53 regulatory network.
- Analysis of gene expression dynamics and protein interactions.
Main Results:
- Sequential induction of Hzf and ASPP is critical for cell fate decisions.
- Hzf promotes cell cycle arrest via p21; ASPP triggers apoptosis via Bax.
- Degradation of Hzf is necessary for apoptosis, regulated by E2F1 or p53-induced E3 ligase.
Conclusions:
- The integrated p53 network model accurately predicts cellular responses.
- The sequential action of Hzf and ASPP is essential for reliable DNA damage response pathways.
- Model predictions are consistent with experimental data and offer testable hypotheses.
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