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Yeast As a Chassis for Developing Functional Assays to Study Human P53
Published on: August 4, 2019
A two-step mechanism for cell fate decision by coordination of nuclear and mitochondrial p53 activities
Xiao-Jun Tian1, Feng Liu, Xiao-Peng Zhang
1National Laboratory of Solid State Microstructures and Department of Physics, Nanjing University, Nanjing, China.
Abstract:
The tumor suppressor p53 has a crucial role in the DNA damage response. Here, we proposed an integrated model of the p53 network and explored how the nuclear and mitochondrial p53 pathways are coordinated to determine cell fates after [Formula: see text]-irradiation in radiosensitive tissues. Using numerical simulations, we found that depending on the extent of DNA damage, cells may survive, commit apoptosis after cell cycle arrest, or undergo apoptosis soon after irradiation. There exists a large cell-to-cell variability in outcome because of stochasticity in the generation and repair of DNA damage as well as cellular heterogeneity. At the cell population level, there occur two waves of apoptosis: a fast wave mediated by mitochondrial p53 within three hours postirradiation, and a slow wave mediated by nuclear p53 after eight hours postirradiation. Thus, we propose a two-step mechanism for cell fate decision. The first step is to decide whether DNA damage is severe enough to trigger apoptosis directly through the mitochondrial p53 pathway, while the second step is to determine whether the damage is fixed after cell cycle arrest. Such a mechanism may represent an efficient and reliable control mode, avoiding unnecessary death or greatly promoting the execution of apoptosis. It was also demonstrated that nuclear p53 can inhibit the pro-apoptotic activity of mitochondrial p53 by transactivating p21, and Mdm2 can facilitate apoptosis by promoting the mono-ubiquitination of p53. These results are either in good agreement with experimental observations or experimentally testable. Our work suggests that both the transcription-independent and -dependent p53 activities are indispensable for a reliable choice of cell fate and also provides clues to therapeutic manipulation of the p53 pathway in cancer treatment.
Insights
The tumor suppressor p53 network determines cell fate after DNA damage. A two-step mechanism involving nuclear and mitochondrial p53 pathways coordinates cell survival or apoptosis following irradiation.
Area of Science:
- Cellular and Molecular Biology
- Radiation Biology
- Systems Biology
Background:
- The p53 protein is a critical regulator of the DNA damage response.
- Understanding p53's role in cell fate determination after irradiation is crucial for radiosensitive tissues.
Purpose of the Study:
- To develop an integrated model of the p53 network.
- To explore the coordination between nuclear and mitochondrial p53 pathways in determining cell fate post-irradiation.
Main Methods:
- Numerical simulations of the p53 network.
- Analysis of cell fate outcomes based on DNA damage extent and cellular heterogeneity.
Main Results:
- Cells exhibit variable fates: survival, apoptosis after arrest, or immediate apoptosis.
- Two distinct apoptosis waves occur: a fast mitochondrial p53-mediated wave and a slow nuclear p53-mediated wave.
- Nuclear p53 can inhibit mitochondrial p53 activity via p21, while Mdm2 promotes apoptosis.
Conclusions:
- A two-step cell fate decision mechanism involving p53 pathways ensures reliable apoptosis execution or cell survival.
- Both transcription-dependent and -independent p53 activities are essential for robust cell fate control.
- Findings offer insights for therapeutic strategies targeting the p53 pathway in cancer treatment.
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