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Updated: May 20, 2026

Laser Microirradiation to Study In Vivo Cellular Responses to Simple and Complex DNA Damage
Published on: January 31, 2018
Recruitment of TRF2 to laser-induced DNA damage sites
Nazmul Huda1, Satoshi Abe, Ling Gu
1Indiana University School of Medicine, Department of Medical and Molecular Genetics, Indianapolis, IN 46202, USA.
Abstract:
Several lines of evidence suggest that the telomere-associated protein TRF2 plays critical roles in the DNA damage response. TRF2 is rapidly and transiently phosphorylated by an ATM-dependent pathway in response to DNA damage and this DNA damage-induced phosphoryation is essential for the DNA-PK-dependent pathway of DNA double-strand break repair (DSB). However, the type of DNA damage that induces TRF2 localization to the damage sites, the requirement for DNA damage-induced phosphorylation of TRF2 for its recruitment, as well as the detailed kinetics of TRF2 accumulation at DNA damage sites have not been fully investigated. In order to address these questions, we used an ultrafast femtosecond multiphoton laser and a continuous wave 405-nm single photon laser to induce DNA damage at defined nuclear locations. Our results showed that DNA damage produced by a femtosecond multiphoton laser was sufficient for localization of TRF2 to these DNA damage sites. We also demonstrate that ectopically expressed TRF2 was recruited to DNA lesions created by a 405-nm laser. Our data suggest that ATM and DNA-PKcs kinases are not required for TRF2 localization to DNA damage sites. Furthermore, we found that phosphorylation of TRF2 at residue T188 was not essential for its recruitment to laser-induced DNA damage sites. Thus, we provide further evidence that a protein known to function in telomere maintenance, TRF2, is recruited to sites of DNA damage and plays critical roles in the DNA damage response.
Insights
The telomere protein TRF2 is recruited to DNA damage sites, independent of ATM/DNA-PK kinases and T188 phosphorylation. This highlights TRF2
Area of Science:
- Molecular Biology
- Cell Biology
- Genetics
Background:
- Telomere-associated protein TRF2 is implicated in DNA damage response.
- TRF2 phosphorylation by ATM is crucial for DNA double-strand break (DSB) repair via DNA-PK.
- Gaps exist in understanding TRF2 recruitment kinetics and phosphorylation requirements at damage sites.
Purpose of the Study:
- Investigate TRF2 localization to DNA damage sites induced by different laser types.
- Determine the necessity of DNA damage-induced phosphorylation for TRF2 recruitment.
- Elucidate the role of ATM and DNA-PKcs in TRF2 localization.
Main Methods:
- Utilized femtosecond multiphoton and 405-nm single photon lasers to induce localized DNA damage.
- Observed TRF2 recruitment to laser-induced DNA lesions using microscopy.
- Assessed the impact of kinase inhibitors and T188 phosphorylation status on TRF2 localization.
Main Results:
- Femtosecond laser-induced DNA damage triggered TRF2 localization.
- Ectopically expressed TRF2 localized to 405-nm laser-induced DNA lesions.
- TRF2 recruitment was independent of ATM and DNA-PKcs kinases.
- Phosphorylation of TRF2 at T188 was not essential for its recruitment to damage sites.
Conclusions:
- TRF2 is recruited to sites of DNA damage induced by various laser types.
- ATM and DNA-PKcs are not required for TRF2 localization to DNA damage sites.
- TRF2's role in DNA damage response extends beyond telomere maintenance.
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