USP7 limits CDK1 activity throughout the cell cycle

Antonio Galarreta1, Pablo Valledor1, Patricia Ubieto-Capella1

  • 1Genomic Instability Group, Spanish National Cancer Research Centre (CNIO), Madrid, Spain.

The EMBO Journal
|April 15, 2021
PubMed

Insights

USP7 inhibitors cause DNA damage and toxicity by activating CDK1, not just stabilizing P53. This unexpected CDK1 activation explains the genotoxicity of USP7 inhibitors.

Area of Science:

  • Biochemistry
  • Cell Biology
  • Cancer Research

Background:

  • USP7 inhibitors are explored as anticancer drugs by stabilizing P53.
  • USP7 inhibitors induce p53-independent DNA damage, but the mechanism is unclear.

Purpose of the Study:

  • Investigate the mechanism behind USP7 inhibitor-induced genotoxicity.
  • Determine the role of CDK1 and PP2A in USP7 inhibitor toxicity.

Main Methods:

  • Cell cycle analysis
  • Phosphoproteomic analysis
  • Inhibition and activation of USP7, PP2A, and CDK1

Main Results:

  • USP7 inhibition leads to widespread CDK1 activation and DNA damage, independent of P53.
  • USP7 interacts with and regulates the cytoplasmic localization of PP2A.
  • Inhibition of USP7 or PP2A causes similar phosphoproteome changes, including increased CDK1 target phosphorylation.
  • Reducing CDK1 activity or activating PP2A alleviates USP7 inhibitor toxicity.

Conclusions:

  • USP7 normally limits CDK1 activity throughout the cell cycle.
  • Untimely CDK1 activation by USP7 inhibitors causes DNA damage and cellular toxicity.
  • This provides a novel mechanism for the anticancer effects of USP7 inhibitors.

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