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DNA double-strand break formation upon UV-induced replication stress activates ATM and DNA-PKcs kinases
Hirohiko Yajima1, Kyung-Jong Lee, Shichuan Zhang
1Division of Molecular Radiation Biology, Department of Radiation Oncology, University of Texas Southwestern Medical Center at Dallas, 2201 Inwood Road, Room NC7.502, Dallas, TX 75390-9187, USA.
Abstract:
The phosphatidylinositol 3-kinase-like protein kinases, including ATM (ataxia-telangiectasia mutated), ATR (ataxia-telangiectasia and Rad3 related), and DNA-PKcs (DNA-dependent protein kinase catalytic subunit), are the main kinases activated following various assaults on DNA. Although ATM and DNA-PKcs kinases are activated upon DNA double-strand breaks, evidence suggests that these kinases are rapidly phosphorylated by ATR kinase upon UV irradiation; thus, these kinases may also participate in the response to replication stress. Using UV-induced replication stress, we further characterize whether ATM and DNA-PKcs kinase activities are also involved in the cellular response. Contrary to the rapid activation of the ATR-dependent pathway, ATM-dependent Chk2 and KAP-1 phosphorylations, as well as DNA-PKcs Ser2056 autophosphorylation, reach their peak level at 4 to 8 h after UV irradiation. The delayed kinetics of ATM- and DNA-PKcs-dependent phosphorylations also correlated with a surge in H2AX phosphorylation, suggesting that double-strand break formation resulting from collapse of replication forks is responsible for the activation of ATM and DNA-PKcs kinases. In addition, we observed that some phosphorylation events initiated by ATR kinase in the response to UV were mediated by ATM at a later phase of the response. Furthermore, the S-phase checkpoint after UV irradiation was defective in ATM-deficient cells. These results suggest that the late increase of ATM activity is needed to complement the decreasing ATR activity for maintaining a vigilant checkpoint regulation upon replication stress.
Insights
The study reveals that ATM and DNA-PKcs kinases are activated later during UV-induced replication stress, suggesting double-strand breaks from collapsed forks trigger this response. ATM activity complements ATR to maintain S-phase checkpoint regulation.
Area of Science:
- Molecular Biology
- Cellular Biology
- DNA Damage Response
Background:
- Phosphatidylinositol 3-kinase-like protein kinases (PIKKs) like ATM, ATR, and DNA-PKcs are crucial for DNA damage response.
- ATR is rapidly activated by UV irradiation, while ATM and DNA-PKcs are typically associated with double-strand breaks.
Purpose of the Study:
- To investigate the roles of ATM and DNA-PKcs in cellular responses to UV-induced replication stress.
- To characterize the kinetics and interplay of PIKK activation during UV stress.
Main Methods:
- UV irradiation of cells to induce replication stress.
- Western blotting to detect phosphorylation of Chk2, KAP-1, H2AX, and DNA-PKcs Ser2056.
- Analysis of S-phase checkpoint function in ATM-deficient cells.
Main Results:
- ATM and DNA-PKcs showed delayed activation (4-8 hours post-UV), correlating with increased H2AX phosphorylation, indicating double-strand break formation.
- ATR-initiated phosphorylation events were later mediated by ATM.
- ATM-deficient cells exhibited defective S-phase checkpoints after UV irradiation.
Conclusions:
- The delayed activation of ATM and DNA-PKcs suggests they respond to replication fork collapse and subsequent double-strand breaks during UV stress.
- ATM plays a crucial role in maintaining the S-phase checkpoint by complementing ATR activity later in the response to UV-induced replication stress.
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