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Updated: Jun 18, 2026

Quantitative Detection of DNA-Protein Crosslinks and Their Post-Translational Modifications
Published on: April 21, 2023
Proteasome inhibition suppresses DNA-dependent protein kinase activation caused by camptothecin
Ryo Sakasai1, Hirobumi Teraoka, Randal S Tibbetts
1Department of Pathological Biochemistry, Medical Research Institute, Tokyo Medical and Dental University, 2-3-10 Kandasurugadai, Chiyoda-ku, Tokyo, Japan. sakasai.pbc@mri.tmd.ac.jp
Abstract:
The ubiquitin-proteasome pathway plays an important role in DNA damage signaling and repair by facilitating the recruitment and activation of DNA repair factors and signaling proteins at sites of damaged chromatin. Proteasome activity is generally not thought to be required for activation of apical signaling kinases including the PI3K-related kinases (PIKKs) ATM, ATR, and DNA-PK that orchestrate downstream signaling cascades in response to diverse genotoxic stimuli. In a previous work, we showed that inhibition of the proteasome by MG-132 suppressed 53BP1 (p53 binding protein1) phosphorylation as well as RPA2 (replication protein A2) phosphorylation in response to the topoisomerase I (TopI) poison camptothecin (CPT). To address the mechanism of proteasome-dependent RPA2 phosphorylation, we investigated the effects of proteasome inhibitors on the upstream PIKKs. MG-132 sharply suppressed CPT-induced DNA-PKcs autophosphorylation, a marker of the activation, whereas the phosphorylation of ATM and ATR substrates was only slightly suppressed by MG-132, suggesting that DNA-PK among the PIKKs is specifically regulated by the proteasome in response to CPT. On the other hand, MG-132 did not suppress DNA-PK activation in response to UV or IR. MG-132 blocked the interaction between DNA-PKcs and Ku heterodimer enhanced by CPT, and hydroxyurea pre-treatment completely abolished CPT-induced DNA-PKcs autophosphorylation, indicating a requirement for ongoing DNA replication. CPT-induced TopI degradation occurred independent of DNA-PK activation, suggesting that DNA-PK activation does not require degradation of trapped TopI complexes. The combined results suggest that CPT-dependent replication fork collapse activates DNA-PK signaling through a proteasome dependent, TopI degradation-independent pathway. The implications of DNA-PK activation in the context of TopI poison-based therapies are discussed.
Insights
The proteasome regulates DNA-PK activation during replication stress, crucial for DNA repair signaling. This study reveals a proteasome-dependent pathway linking camptothecin-induced replication fork collapse to DNA-PK activation.
Area of Science:
- Molecular Biology
- DNA Damage Response
- Cellular Signaling
Background:
- The ubiquitin-proteasome pathway is vital for DNA damage signaling and repair.
- Proteasome activity is not typically required for activating key DNA damage kinases like ATM, ATR, and DNA-PK.
- Previous work indicated proteasome inhibition affects DNA repair factor phosphorylation.
Purpose of the Study:
- Investigate the mechanism of proteasome-dependent RPA2 phosphorylation.
- Determine how proteasome inhibitors affect upstream PI3K-related kinases (PIKKs).
- Clarify the specific role of the proteasome in regulating DNA-PK activation during genotoxic stress.
Main Methods:
- Utilized proteasome inhibitors (e.g., MG-132) to assess effects on PIKKs.
- Examined autophosphorylation of DNA-PKcs as a marker for activation.
- Investigated protein-protein interactions (DNA-PKcs and Ku heterodimer) and effects of replication stress agents (hydroxyurea).
Main Results:
- Proteasome inhibition by MG-132 specifically suppressed camptothecin (CPT)-induced DNA-PKcs autophosphorylation.
- ATM and ATR substrate phosphorylation were only slightly affected by MG-132.
- MG-132 blocked CPT-enhanced DNA-PKcs and Ku heterodimer interaction; hydroxyurea abolished CPT-induced DNA-PKcs activation, indicating replication dependence.
Conclusions:
- DNA-PK activation in response to CPT is specifically regulated by the proteasome.
- CPT-induced replication fork collapse activates DNA-PK signaling via a proteasome-dependent, TopI degradation-independent pathway.
- This highlights the role of DNA-PK activation in TopI poison therapies.
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