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Updated: Jul 14, 2026

Visualizing and Quantifying Endonuclease-Based Site-Specific DNA Damage
Published on: August 21, 2021
DNA-damage response network at the crossroads of cell-cycle checkpoints, cellular senescence and apoptosis
Estelle Schmitt1, Claudie Paquet, Myriam Beauchemin
1Notre Dame Hospital and Montreal Cancer Institute, Research Centre of University of Montreal Hospital Centre, Montreal, QUE, Canada.
Abstract:
Tissue homeostasis requires a carefully-orchestrated balance between cell proliferation, cellular senescence and cell death. Cells proliferate through a cell cycle that is tightly regulated by cyclin-dependent kinase activities. Cellular senescence is a safeguard program limiting the proliferative competence of cells in living organisms. Apoptosis eliminates unwanted cells by the coordinated activity of gene products that regulate and effect cell death. The intimate link between the cell cycle, cellular senescence, apoptosis regulation, cancer development and tumor responses to cancer treatment has become eminently apparent. Extensive research on tumor suppressor genes, oncogenes, the cell cycle and apoptosis regulatory genes has revealed how the DNA damage-sensing and -signaling pathways, referred to as the DNA-damage response network, are tied to cell proliferation, cell-cycle arrest, cellular senescence and apoptosis. DNA-damage responses are complex, involving "sensor" proteins that sense the damage, and transmit signals to "transducer" proteins, which, in turn, convey the signals to numerous "effector" proteins implicated in specific cellular pathways, including DNA repair mechanisms, cell-cycle checkpoints, cellular senescence and apoptosis. The Bcl-2 family of proteins stands among the most crucial regulators of apoptosis and performs vital functions in deciding whether a cell will live or die after cancer chemotherapy and irradiation. In addition, several studies have now revealed that members of the Bcl-2 family also interface with the cell cycle, DNA repair/recombination and cellular senescence, effects that are generally distinct from their function in apoptosis. In this review, we report progress in understanding the molecular networks that regulate cell-cycle checkpoints, cellular senescence and apoptosis after DNA damage, and discuss the influence of some Bcl-2 family members on cell-cycle checkpoint regulation.
Insights
Maintaining tissue balance involves cell cycle, senescence, and apoptosis. The Bcl-2 family influences these processes, impacting cancer treatment responses and cell fate after DNA damage.
Area of Science:
- Molecular biology
- Cellular biology
- Cancer research
Background:
- Tissue homeostasis relies on balancing cell proliferation, senescence, and apoptosis.
- The cell cycle, regulated by cyclin-dependent kinases, governs cell proliferation.
- Cellular senescence and apoptosis are critical protective mechanisms against uncontrolled cell growth and damage.
Purpose of the Study:
- To review molecular networks regulating cell-cycle checkpoints, senescence, and apoptosis post-DNA damage.
- To discuss the role of Bcl-2 family proteins in these cellular processes.
- To highlight the connection between DNA damage response, cell fate, and cancer therapy.
Main Methods:
- Literature review of studies on DNA damage response pathways.
- Analysis of molecular mechanisms linking cell cycle, senescence, and apoptosis.
- Examination of the Bcl-2 family's involvement in DNA damage response and cell-cycle regulation.
Main Results:
- DNA-damage response networks integrate cell proliferation, cell-cycle arrest, senescence, and apoptosis.
- The Bcl-2 family critically regulates apoptosis and influences cell-cycle checkpoints, DNA repair, and senescence.
- These Bcl-2 family functions extend beyond apoptosis regulation.
Conclusions:
- The Bcl-2 family plays a multifaceted role in cellular responses to DNA damage, affecting cell fate and proliferation.
- Understanding these networks is crucial for cancer treatment strategies.
- Further research into Bcl-2 family interactions with cell-cycle checkpoints is warranted.
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