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Modeling the role of p53 pulses in DNA damage- induced cell death decision
Tingzhe Sun1, Chun Chen, Yuanyuan Wu
1State Key Laboratory of Pharmaceutical Biotechnology, School of Life Sciences, Nanjing University, Nanjing, 210093, PR China. confucian007@126.com
Background:
The tumor suppressor p53 plays pivotal roles in tumorigenesis suppression. Although oscillations of p53 have been extensively studied, the mechanism of p53 pulses and their physiological roles in DNA damage response remain unclear.
Results:
To address these questions we presented an integrated model in which Ataxia-Telangiectasia Mutated (ATM) activation and p53 oscillation were incorporated with downstream apoptotic events, particularly the interplays between Bcl-2 family proteins. We first reproduced digital oscillation of p53 as the response of normal cells to DNA damage. Subsequent modeling in mutant cells showed that high basal DNA damage is a plausible cause for sustained p53 pulses observed in tumor cells. Further computational analyses indicated that p53-dependent PUMA accumulation and the PUMA-controlled Bax activation switch might play pivotal roles to count p53 pulses and thus decide the cell fate.
Conclusion:
The high levels of basal DNA damage are responsible for generating sustained pulses of p53 in the tumor cells. Meanwhile, the Bax activation switch can count p53 pulses through PUMA accumulation and transfer it into death signal. Our modeling provides a plausible mechanism about how cells generate and orchestrate p53 pulses to tip the balance between survival and death.
Insights
High DNA damage causes sustained p53 pulses in tumor cells. The Bax activation switch counts these pulses via PUMA, influencing cell fate decisions in DNA damage response.
Area of Science:
- Molecular Biology
- Cellular Dynamics
- Cancer Research
Background:
- The tumor suppressor p53 is crucial for preventing cancer.
- p53 oscillations are known, but their mechanism and role in DNA damage response are unclear.
Purpose of the Study:
- To model the mechanism of p53 pulses during DNA damage response.
- To elucidate the physiological roles of p53 oscillations in cell fate determination.
Main Methods:
- Developed an integrated computational model incorporating ATM activation, p53 oscillation, and apoptotic pathways.
- Modeled normal and mutant cells' responses to DNA damage.
- Analyzed the roles of Bcl-2 family proteins, PUMA, and Bax.
Main Results:
- Successfully reproduced digital p53 oscillation in normal cells responding to DNA damage.
- Identified high basal DNA damage as a cause for sustained p53 pulses in tumor cells.
- Computational analysis suggested p53-dependent PUMA accumulation and Bax activation are key to counting p53 pulses and deciding cell fate.
Conclusions:
- Sustained p53 pulses in tumor cells are driven by high basal DNA damage.
- The Bax activation switch, via PUMA, counts p53 pulses, translating them into a death signal.
- The model offers a plausible mechanism for how cells orchestrate p53 pulses to balance survival and death.
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