Related Experiment Video
Updated: Jul 17, 2026

Characterizing DNA Repair Processes at Transient and Long-lasting Double-strand DNA Breaks by Immunofluorescence Microscopy
Published on: June 8, 2018
Ku70/80 modulates ATM and ATR signaling pathways in response to DNA double strand breaks
Nozomi Tomimatsu1, Candice G T Tahimic, Akihiro Otsuki
1Institute of Regenerative Medicine and Biofunction, Graduate School of Medical Science, Tottori University, 86 Nishimachi, Yonago, Tottori 683-8503, Japan.
Abstract:
Double strand break (DSB) recognition is the first step in the DSB damage response and involves activation of ataxia telangiectasia-mutated (ATM) and phosphorylation of targets such as p53 to trigger cell cycle arrest, DNA repair, or apoptosis. It was reported that activation of ATM- and Rad3-related (ATR) kinase by DSBs also occurs in an ATM-dependent manner. On the other hand, Ku70/80 is known to participate at a later time point in the DSB response, recruiting DNA-PKcs to facilitate non-homologous end joining. Because Ku70/80 has a high affinity for broken DNA ends and is abundant in nuclei, we examined their possible involvement in other aspects of the DSB damage response, particularly in modulating the activity of ATM and other phosphatidylinositol (PI) 3-related kinases during DSB recognition. We thus analyzed p53(Ser18) phosphorylation in irradiated Ku-deficient cells and observed persistent phosphorylation in these cells relative to wild type cells. ATM or ATR inhibition revealed that this phosphorylation is mainly mediated by ATM-dependent ATR activity at 2 h post-ionizing radiation in wild type cells, whereas in Ku-deficient cells, this occurs mainly through direct ATM activity, with a secondary contribution from ATR via a novel ATM-independent mechanism. Using ATM/Ku70 double-null cell lines, which we generated, we confirmed that ATM-independent ATR activity contributed to persistent phosphorylation of p53(Ser18) in Ku-deficient cells at 12 h post-ionizing radiation. In summary, we discovered a novel role for Ku70/80 in modulating ATM-dependent ATR activation during DSB damage response and demonstrated that these proteins confer a protective effect against ATM-independent ATR activation at later stages of the DSB damage response.
Insights
Ku70/80 proteins modulate ATM-dependent ATR activation during DNA double-strand break (DSB) repair. These proteins protect against ATM-independent ATR activation, revealing a novel role in the DSB damage response.
Area of Science:
- Molecular Biology
- Cellular Biology
- DNA Damage Response
Background:
- Double-strand break (DSB) recognition initiates the DNA damage response, involving ATM activation and p53 phosphorylation.
- ATM and Rad3-related (ATR) kinase activation by DSBs is typically ATM-dependent.
- Ku70/80 proteins are known to participate later in DSB repair by facilitating non-homologous end joining.
Purpose of the Study:
- To investigate the role of Ku70/80 in modulating ATM and other PI 3-related kinase activity during DSB recognition.
- To analyze the impact of Ku70/80 deficiency on p53 phosphorylation and kinase activation pathways following DSB induction.
Main Methods:
- Analysis of p53(Ser18) phosphorylation in irradiated wild-type and Ku-deficient cells.
- Inhibition of ATM and ATR kinases to elucidate signaling pathways.
- Generation and utilization of ATM/Ku70 double-null cell lines.
Main Results:
- Ku-deficient cells exhibited persistent p53(Ser18) phosphorylation compared to wild-type cells.
- In wild-type cells, phosphorylation was ATM-dependent ATR activity at 2h post-irradiation.
- In Ku-deficient cells, phosphorylation was primarily via direct ATM activity, with a secondary ATM-independent ATR mechanism at 12h post-irradiation.
Conclusions:
- Ku70/80 plays a novel role in regulating ATM-dependent ATR activation during the early stages of DSB response.
- Ku70/80 provides a protective effect against ATM-independent ATR activation in later stages of the DSB damage response.
Related Concept Videos
DNA Damage can Stall the Cell Cycle
DNA Damage Can Stall the Cell Cycle
Fixing Double-strand Breaks
Fixing Double-strand Breaks
MAPK Signaling Cascades
The Intrinsic Apoptotic Pathway

