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Updated: Jul 7, 2026

Visualizing and Quantifying Endonuclease-Based Site-Specific DNA Damage
Published on: August 21, 2021
DNA damage repair and response proteins as targets for cancer therapy
1Center for Radiological Research, Department of Radiation Oncology, Columbia University College of Physicians and Surgeons, New York, NY 10032, USA. lieberman@cancercenter.columbia.edu
Abstract:
The cellular response to DNA damage is critical for determining whether carcinogenesis, cell death or other deleterious biological effects will ensue. Numerous cellular enzymatic mechanisms can directly repair damaged DNA, or allow tolerance of DNA lesions, and thus reduce potential harmful effects. These processes include base excision repair, nucleotide excision repair, nonhomologous end joining, homologous recombinational repair and mismatch repair, as well as translesion synthesis. Furthermore, DNA damage-inducible cell cycle checkpoint systems transiently delay cell cycle progression. Presumably, this allows extra time for repair before entry of cells into critical phases of the cell cycle, an event that could be lethal if pursued with damaged DNA. When damage is excessive apoptotic cellular suicide mechanisms can be induced. Many of the survival-promoting pathways maintain genomic integrity even in the absence of exogenous agents, thus likely processing spontaneous damage caused by the byproducts of normal cellular metabolism. DNA damage can initiate cancer, and radiological as well as chemical agents used to treat cancer patients often cause DNA damage. Many genes are involved in each of the DNA damage processing mechanisms, and the encoded proteins could ultimately serve as targets for therapy, with the goal of neutralizing their ability to repair damage in cancer cells. Therefore, modulation of DNA damage responses coupled with more conventional radiotherapy and chemotherapy approaches could sensitize cancer cells to treatment. Alteration of DNA damage response genes and proteins should thus be considered an important though as of yet not fully exploited avenue to enhance cancer therapy.
Insights
Cellular DNA damage responses are crucial for preventing cancer and cell death. Targeting DNA repair mechanisms offers a promising strategy to enhance cancer therapy effectiveness.
Area of Science:
- Molecular Biology
- Genetics
- Cell Biology
Background:
- Cellular response to DNA damage is vital for preventing carcinogenesis and cell death.
- Numerous enzymatic mechanisms repair DNA damage or allow lesion tolerance, mitigating harmful effects.
- DNA damage-inducible cell cycle checkpoints and apoptotic pathways manage excessive damage.
Purpose of the Study:
- To review the critical role of DNA damage response pathways in cellular fate.
- To highlight the involvement of DNA repair mechanisms in cancer initiation and treatment.
- To explore the therapeutic potential of targeting DNA damage response pathways in cancer therapy.
Main Methods:
- Literature review of DNA repair mechanisms.
- Analysis of cell cycle checkpoints and apoptosis induction.
- Examination of gene and protein targets involved in DNA damage response.
Main Results:
- Multiple DNA repair pathways (e.g., base excision repair, nucleotide excision repair) maintain genomic integrity.
- Cell cycle checkpoints and apoptosis are critical for managing DNA damage.
- Genes and proteins involved in DNA damage processing are potential therapeutic targets.
Conclusions:
- Modulating DNA damage response pathways can sensitize cancer cells to conventional treatments.
- Targeting DNA repair mechanisms represents a significant, underexploited avenue for enhancing cancer therapy.
- Understanding these pathways is key to developing novel cancer treatment strategies.
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