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Updated: Apr 1, 2026

Visualizing and Quantifying Endonuclease-Based Site-Specific DNA Damage
Published on: August 21, 2021
DNA excision repair at telomeres
Pingping Jia1, Chengtao Her2, Weihang Chai3
1Elson S. Floyd College of Medicine, United States.
Abstract:
DNA damage is caused by either endogenous cellular metabolic processes such as hydrolysis, oxidation, alkylation, and DNA base mismatches, or exogenous sources including ultraviolet (UV) light, ionizing radiation, and chemical agents. Damaged DNA that is not properly repaired can lead to genomic instability, driving tumorigenesis. To protect genomic stability, mammalian cells have evolved highly conserved DNA repair mechanisms to remove and repair DNA lesions. Telomeres are composed of long tandem TTAGGG repeats located at the ends of chromosomes. Maintenance of functional telomeres is critical for preventing genome instability. The telomeric sequence possesses unique features that predispose telomeres to a variety of DNA damage induced by environmental genotoxins. This review briefly describes the relevance of excision repair pathways in telomere maintenance, with the focus on base excision repair (BER), nucleotide excision repair (NER), and mismatch repair (MMR). By summarizing current knowledge on excision repair of telomere damage and outlining many unanswered questions, it is our hope to stimulate further interest in a better understanding of excision repair processes at telomeres and in how these processes contribute to telomere maintenance.
Insights
DNA damage can cause genomic instability and cancer. Mammalian cells use DNA repair mechanisms, including base excision repair (BER), nucleotide excision repair (NER), and mismatch repair (MMR), to maintain telomere stability and prevent genome instability.
Area of Science:
- Genetics
- Molecular Biology
- Cell Biology
Background:
- DNA damage arises from internal cellular processes and external agents.
- Unrepaired DNA damage can lead to genomic instability and cancer.
- Mammalian cells possess conserved DNA repair mechanisms to preserve genomic integrity.
Purpose of the Study:
- To review the role of excision repair pathways in telomere maintenance.
- To focus on base excision repair (BER), nucleotide excision repair (NER), and mismatch repair (MMR) in telomeres.
- To highlight current knowledge and identify research gaps in telomere DNA repair.
Main Methods:
- Literature review of DNA repair pathways.
- Focus on excision repair mechanisms (BER, NER, MMR).
- Analysis of telomere maintenance and DNA damage.
Main Results:
- Telomeres are susceptible to DNA damage due to their unique sequence.
- Excision repair pathways are crucial for maintaining telomere integrity.
- Specific roles of BER, NER, and MMR in telomere repair are discussed.
Conclusions:
- Understanding DNA repair at telomeres is vital for preventing genome instability.
- Further research is needed to fully elucidate excision repair processes at telomeres.
- These repair mechanisms are critical for overall genome stability and cancer prevention.
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