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Updated: Apr 10, 2026

Visualizing and Quantifying Endonuclease-Based Site-Specific DNA Damage
Published on: August 21, 2021
Targeted DNA damage at individual telomeres disrupts their integrity and triggers cell death
Luxi Sun1, Rong Tan2, Jianquan Xu3
1School of Medicine, Tsinghua University, No. 1 Tsinghua Yuan, Haidian District, Beijing 100084, China University of Pittsburgh Cancer Institute; University of Pittsburgh School of Medicine; 5117 Centre Avenue, Pittsburgh, PA 15213, USA Department of Microbiology and Molecular Genetics; University of Pittsburgh School of Medicine; 523 Bridgeside Point II, 450 Technology Drive, Pittsburgh, PA 15219, USA.
Abstract:
Cellular DNA is organized into chromosomes and capped by a unique nucleoprotein structure, the telomere. Both oxidative stress and telomere shortening/dysfunction cause aging-related degenerative pathologies and increase cancer risk. However, a direct connection between oxidative damage to telomeric DNA, comprising <1% of the genome, and telomere dysfunction has not been established. By fusing the KillerRed chromophore with the telomere repeat binding factor 1, TRF1, we developed a novel approach to generate localized damage to telomere DNA and to monitor the real time damage response at the single telomere level. We found that DNA damage at long telomeres in U2OS cells is not repaired efficiently compared to DNA damage in non-telomeric regions of the same length in heterochromatin. Telomeric DNA damage shortens the average length of telomeres and leads to cell senescence in HeLa cells and cell death in HeLa, U2OS and IMR90 cells, when DNA damage at non-telomeric regions is undetectable. Telomere-specific damage induces chromosomal aberrations, including chromatid telomere loss and telomere associations, distinct from the damage induced by ionizing irradiation. Taken together, our results demonstrate that oxidative damage induces telomere dysfunction and underline the importance of maintaining telomere integrity upon oxidative damage.
Insights
Oxidative damage to telomeric DNA causes telomere dysfunction, shortening telomeres and leading to cell senescence or death. This highlights the critical role of telomere integrity in preventing age-related diseases and cancer.
Area of Science:
- Molecular Biology
- Genetics
- Cell Biology
Background:
- Telomeres protect chromosome ends but are vulnerable to oxidative stress.
- Oxidative damage to telomeres can lead to aging and cancer, but direct links remain unclear.
Purpose of the Study:
- To investigate the direct impact of oxidative damage on telomere DNA and telomere dysfunction.
- To establish a connection between telomeric DNA damage and cellular aging and cancer risk.
Main Methods:
- Developed a novel KillerRed-TRF1 fusion protein to induce localized telomere DNA damage.
- Monitored real-time damage response at the single telomere level in various cell lines (U2OS, HeLa, IMR90).
Main Results:
- Telomeric DNA damage is repaired less efficiently than damage in heterochromatic non-telomeric regions.
- Telomeric DNA damage shortens telomeres, induces cell senescence and death, and causes distinct chromosomal aberrations.
- Damage to non-telomeric regions showed no detectable effects.
Conclusions:
- Oxidative damage directly induces telomere dysfunction.
- Maintaining telomere integrity is crucial for cellular health and preventing pathologies associated with oxidative damage.
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