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Published on: June 9, 2017
Protein phosphatase 2A antagonizes ATM and ATR in a Cdk2- and Cdc7-independent DNA damage checkpoint
Paris Petersen1, Danny M Chou, Zhongsheng You
1Department of Pathology 0612, University of California at San Diego, 9500 Gilman Dr., La Jolla, CA 92093-0612, USA.
Abstract:
We previously used a soluble cell-free system derived from Xenopus eggs to investigate the role of protein phosphatase 2A (PP2A) in chromosomal DNA replication. We found that immunodepletion of PP2A or inhibition of PP2A by okadaic acid (OA) inhibits initiation of DNA replication by preventing loading of the initiation factor Cdc45 onto prereplication complexes. Evidence was provided that PP2A counteracts an inhibitory protein kinase that phosphorylates and inactivates a crucial Cdc45 loading factor. Here, we report that the inhibitory effect of OA is abolished by caffeine, an inhibitor of the checkpoint kinases ataxia-telangiectasia mutated protein (ATM) and ataxia-telangiectasia related protein (ATR) but not by depletion of ATM or ATR from the extract. Furthermore, we demonstrate that double-strand DNA breaks (DSBs) cause inhibition of Cdc45 loading and initiation of DNA replication and that caffeine, as well as immunodepletion of either ATM or ATR, abolishes this inhibition. Importantly, the DSB-induced inhibition of Cdc45 loading is prevented by addition of the catalytic subunit of PP2A to the extract. These data suggest that DSBs and OA prevent Cdc45 loading through different pathways, both of which involve PP2A, but only the DSB-induced checkpoint implicates ATM and ATR. The inhibitory effect of DSBs on Cdc45 loading does not result from downregulation of cyclin-dependent kinase 2 (Cdk2) or Cdc7 activity and is independent of Chk2. However, it is partially dependent on Chk1, which becomes phosphorylated in response to DSBs. These data suggest that PP2A counteracts ATM and ATR in a DNA damage checkpoint in Xenopus egg extracts.
Insights
Protein phosphatase 2A (PP2A) is crucial for DNA replication initiation. In Xenopus egg extracts, PP2A counteracts DNA damage checkpoints involving ATM and ATR kinases, preventing inhibition of Cdc45 loading.
Area of Science:
- Cell Biology
- Molecular Biology
- Biochemistry
Background:
- Protein phosphatase 2A (PP2A) plays a role in DNA replication initiation.
- PP2A inhibition prevents Cdc45 loading onto prereplication complexes.
- PP2A counteracts an inhibitory kinase that inactivates a Cdc45 loading factor.
Purpose of the Study:
- Investigate the role of PP2A in DNA replication initiation and DNA damage checkpoints.
- Determine the involvement of ATM and ATR kinases in PP2A-mediated regulation.
- Elucidate the pathways by which DNA double-strand breaks (DSBs) inhibit replication initiation.
Main Methods:
- Utilized a soluble cell-free system from Xenopus eggs.
- Employed immunodepletion and specific inhibitors (okadaic acid, caffeine).
- Assessed Cdc45 loading, DNA replication initiation, and kinase activities (ATM, ATR, Cdk2, Cdc7, Chk1, Chk2).
Main Results:
- Okadaic acid (OA) inhibition of DNA replication is abolished by caffeine, an ATM/ATR inhibitor.
- DSBs inhibit Cdc45 loading and replication initiation.
- DSB-induced inhibition is abolished by caffeine or ATM/ATR depletion and prevented by adding PP2A catalytic subunit.
- DSB-induced inhibition is partially dependent on Chk1 and independent of Cdk2, Cdc7, and Chk2.
Conclusions:
- DSBs and OA inhibit Cdc45 loading via distinct pathways involving PP2A.
- The DSB-induced checkpoint implicates ATM and ATR, with PP2A counteracting these kinases.
- PP2A's role in DNA damage response extends to counteracting ATM/ATR in Xenopus egg extracts.
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