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Updated: Oct 2, 2025

Visualizing and Quantifying Endonuclease-Based Site-Specific DNA Damage
Published on: August 21, 2021
DNA Damage Tolerance Pathways in Human Cells: A Potential Therapeutic Target
Ashlynn Ai Li Ler1, Michael P Carty1,2
1Biochemistry, School of Biological and Chemical Sciences, The National University of Ireland (NUI) Galway, Galway, Ireland.
Abstract:
DNA lesions arising from both exogenous and endogenous sources occur frequently in DNA. During DNA replication, the presence of unrepaired DNA damage in the template can arrest replication fork progression, leading to fork collapse, double-strand break formation, and to genome instability. To facilitate completion of replication and prevent the generation of strand breaks, DNA damage tolerance (DDT) pathways play a key role in allowing replication to proceed in the presence of lesions in the template. The two main DDT pathways are translesion synthesis (TLS), which involves the recruitment of specialized TLS polymerases to the site of replication arrest to bypass lesions, and homology-directed damage tolerance, which includes the template switching and fork reversal pathways. With some exceptions, lesion bypass by TLS polymerases is a source of mutagenesis, potentially contributing to the development of cancer. The capacity of TLS polymerases to bypass replication-blocking lesions induced by anti-cancer drugs such as cisplatin can also contribute to tumor chemoresistance. On the other hand, during homology-directed DDT the nascent sister strand is transiently utilised as a template for replication, allowing for error-free lesion bypass. Given the role of DNA damage tolerance pathways in replication, mutagenesis and chemoresistance, a more complete understanding of these pathways can provide avenues for therapeutic exploitation. A number of small molecule inhibitors of TLS polymerase activity have been identified that show synergy with conventional chemotherapeutic agents in killing cancer cells. In this review, we will summarize the major DDT pathways, explore the relationship between damage tolerance and carcinogenesis, and discuss the potential of targeting TLS polymerases as a therapeutic approach.
Insights
DNA damage tolerance (DDT) pathways, including translesion synthesis (TLS), help cells replicate DNA past lesions. Understanding DDT is key to developing new cancer therapies targeting TLS polymerases.
Area of Science:
- Molecular Biology
- Genetics
- Cancer Research
Background:
- DNA lesions from internal and external sources are common.
- Unrepaired DNA damage stalls replication forks, causing genomic instability.
- DNA damage tolerance (DDT) pathways are crucial for replication completion and preventing strand breaks.
Purpose of the Study:
- To review major DDT pathways.
- To explore the link between DNA damage tolerance and carcinogenesis.
- To discuss therapeutic strategies targeting translesion synthesis (TLS) polymerases.
Main Methods:
- Review of existing literature on DNA damage tolerance pathways.
- Analysis of the roles of translesion synthesis (TLS) and homology-directed damage tolerance.
- Exploration of the connection between DDT, mutagenesis, and cancer development.
Main Results:
- TLS polymerases bypass DNA lesions, often causing mutations and contributing to cancer and chemoresistance.
- Homology-directed DDT uses the sister strand for error-free lesion bypass.
- Small molecule inhibitors of TLS polymerases show promise in combination cancer therapy.
Conclusions:
- DDT pathways are critical for maintaining genome stability and replication.
- Targeting TLS polymerases offers a potential therapeutic strategy for cancer treatment.
- Further understanding of DDT mechanisms can lead to novel anti-cancer drug development.
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