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Updated: Jul 10, 2025

Two- and Three-Dimensional Live Cell Imaging of DNA Damage Response Proteins
Published on: September 28, 2012
p53 and p21 dynamics encode single-cell DNA damage levels, fine-tuning proliferation and shaping population
Nica Gutu1,2, Neha Binish1,3, Ulrich Keilholz1,4
1Charité Universitätsmedizin, Charité Comprehensive Cancer Center, Berlin, Germany.
Abstract:
Cells must accurately and quickly detect DNA damage through a set of checkpoint mechanisms that enable repair and control proliferation. Heterogeneous levels of cellular stress and noisy signaling processes can lead to phenotypic variability but little is known about their role in underlying proliferation heterogeneity. Here we study two previously published single cell datasets and find that cells encode heterogeneous levels of endogenous and exogenous DNA damage to shape proliferation heterogeneity at the population level. Using a comprehensive time series analysis of short- and long-term signaling dynamics of p53 and p21, we show that DNA damage levels are quantitatively translated into p53 and p21 signal parameters in a gradual manner. Analyzing instantaneous proliferation and signaling differences among equally-radiated cells, we identify time-localized changes in the period of p53 pulses that drive cells out of a low proliferative state. Our findings suggest a novel role of the p53-p21 network in quantitatively encoding DNA damage strength and fine-tuning proliferation trajectories.
Insights
Cells encode DNA damage levels to control proliferation. The p53-p21 network quantitatively adjusts proliferation rates by altering p53 signaling dynamics in response to DNA damage.
Area of Science:
- Cellular biology
- Molecular biology
- Systems biology
Background:
- Cellular checkpoints rapidly detect DNA damage for repair and proliferation control.
- Phenotypic variability arises from cellular stress and signaling noise, but its link to proliferation heterogeneity is unclear.
Purpose of the Study:
- Investigate how cells encode DNA damage levels to influence proliferation heterogeneity.
- Elucidate the role of the p53-p21 signaling network in this process.
Main Methods:
- Analysis of two single-cell datasets.
- Time-series analysis of p53 and p21 signaling dynamics.
- Examination of proliferation and signaling in equally irradiated cells.
Main Results:
- Cells encode heterogeneous DNA damage levels, shaping population-level proliferation.
- DNA damage strength is quantitatively translated into p53 and p21 signal parameters.
- Changes in p53 pulse periods drive cells out of low proliferative states.
Conclusions:
- The p53-p21 network plays a key role in quantitatively encoding DNA damage.
- This network fine-tunes cellular proliferation trajectories based on damage levels.
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