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Updated: Jun 26, 2026

Manipulation and Analysis of Cell Cycle-Dependent Processes in Budding Yeast
Published on: September 26, 2025
Distinct mechanisms act in concert to mediate cell cycle arrest
Jared E Toettcher1, Alexander Loewer, Gerard J Ostheimer
1Department of Biological Engineering, Computer Science and Artificial Intelligence Laboratory, Massachusetts Institute of Technology, Cambridge, MA 02139, USA.
Abstract:
In response to DNA damage, cells arrest at specific stages in the cell cycle. This arrest must fulfill at least 3 requirements: it must be activated promptly; it must be sustained as long as damage is present to prevent loss of genomic information; and after the arrest, cells must re-enter into the appropriate cell cycle phase to ensure proper ploidy. Multiple molecular mechanisms capable of arresting the cell cycle have been identified in mammalian cells; however, it is unknown whether each mechanism meets all 3 requirements or whether they act together to confer specific functions to the arrest. To address this question, we integrated mathematical models describing the cell cycle and the DNA damage signaling networks and tested the contributions of each mechanism to cell cycle arrest and re-entry. Predictions from this model were then tested with quantitative experiments to identify the combined action of arrest mechanisms in irradiated cells. We find that different arrest mechanisms serve indispensable roles in the proper cellular response to DNA damage over time: p53-independent cyclin inactivation confers immediate arrest, whereas p53-dependent cyclin downregulation allows this arrest to be sustained. Additionally, p21-mediated inhibition of cyclin-dependent kinase activity is indispensable for preventing improper cell cycle re-entry and endoreduplication. This work shows that in a complex signaling network, seemingly redundant mechanisms, acting in a concerted fashion, can achieve a specific cellular outcome.
Insights
Cell cycle arrest after DNA damage requires distinct molecular mechanisms. p53-independent pathways provide immediate arrest, while p53-dependent pathways sustain it, preventing genomic instability.
Area of Science:
- Cell Biology
- Molecular Biology
- Systems Biology
Background:
- Cell cycle arrest is a critical response to DNA damage, ensuring genomic integrity.
- Mammalian cells employ multiple molecular mechanisms for cell cycle arrest.
- The distinct roles and coordinated action of these mechanisms remain incompletely understood.
Purpose of the Study:
- To investigate the specific contributions of different molecular mechanisms to cell cycle arrest and re-entry following DNA damage.
- To determine if individual mechanisms fulfill all requirements of a proper arrest or if they function synergistically.
Main Methods:
- Integration of mathematical models of cell cycle and DNA damage signaling networks.
- Quantitative experimental validation of model predictions in irradiated cells.
Main Results:
- p53-independent cyclin inactivation ensures prompt cell cycle arrest.
- p53-dependent cyclin downregulation sustains the arrest during DNA damage.
- p21-mediated inhibition of cyclin-dependent kinase activity is crucial for preventing aberrant cell cycle re-entry and endoreduplication.
Conclusions:
- Different molecular mechanisms play indispensable, time-dependent roles in the cellular response to DNA damage.
- Seemingly redundant pathways act in a concerted manner to achieve a specific cellular outcome in complex signaling networks.
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