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Updated: Mar 8, 2026

Author Spotlight: Combining Proximity Ligand Assay with Gamma-H2AX Staining to Characterize Protein Interactions in DNA Damage Response
Published on: August 2, 2024
Cloning, localization and focus formation at DNA damage sites of canine Ku70
Manabu Koike1, Yasutomo Yutoku, Aki Koike
1National Institute of Radiological Sciences, National Institutes for Quantum and Radiological Science and Technology, 4-9-1 Anagawa, Inage-ku, Chiba 263-8555, Japan.
Abstract:
Understanding the molecular mechanisms of DNA double-strand break (DSB) repair machinery, specifically non-homologous DNA-end joining (NHEJ), is crucial for developing next-generation radiotherapies and common chemotherapeutics for human and animal cancers. The localization, protein-protein interactions and post-translational modifications of core NHEJ factors, might play vital roles for regulation of NHEJ activity. The human Ku heterodimer (Ku70/Ku80) is a core NHEJ factor in the NHEJ pathway and is involved in sensing of DSBs. Companion animals, such as canines, have been proposed to be an excellent model for cancer research, including development of chemotherapeutics. However, the post-translational modifications, localization and complex formation of canine Ku70 have not been clarified. Here, we show that canine Ku70 localizes in the nuclei of interphase cells and that it is recruited quickly at laser-microirradiated DSB sites. Structurally, two DNA-PK phosphorylation sites (S6 and S51), an ubiquitination site (K114), two canonical sumoylation consensus motifs, a CDK phosphorylation motif, and a nuclear localization signal (NLS) in the human Ku70 are evolutionarily conserved in canine and mouse species, while the acetylation sites in human Ku70 are partially conserved. Intriguingly, the primary candidate nucleophile (K31) required for 5'dRP/AP lyase activity of human and mouse Ku70 is not conserved in canines, suggesting that canine Ku does not possess this activity. Our findings provide insights into the molecular mechanisms of Ku-dependent NHEJ in a canine model and form a platform for the development of next-generation common chemotherapeutics for human and animal cancers.
Insights
Canine Ku70 is found in cell nuclei and quickly moves to DNA damage sites. Key modifications are conserved, but a specific DNA repair activity is absent in dogs, aiding cancer therapy development.
Area of Science:
- Molecular biology
- Cancer research
- Comparative genomics
Background:
- DNA double-strand break (DSB) repair is vital for cancer therapies.
- Non-homologous DNA-end joining (NHEJ) is a key DSB repair pathway.
- Canine models offer potential for cancer drug development.
Purpose of the Study:
- Investigate canine Ku70's role in DNA repair.
- Determine post-translational modifications and localization of canine Ku70.
- Assess conservation of NHEJ factor functions between species.
Main Methods:
- Cellular localization studies using microscopy.
- Analysis of protein sequence conservation.
- Laser microirradiation to induce DSBs.
Main Results:
- Canine Ku70 localizes to the nucleus and is recruited to DSB sites.
- Key human Ku70 modification sites are conserved in canines.
- Canine Ku70 lacks a specific DNA lyase activity found in other species.
Conclusions:
- Canine Ku70 shares functional similarities with human and mouse counterparts.
- Differences in Ku70 activity may impact canine cancer therapy responses.
- This study provides a basis for developing targeted cancer treatments in animals and humans.
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