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

DNA Repair
|December 5, 2009
PubMed

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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