An ATM-PPM1D Circuit Controls the Processing and Restart of DNA Replication Forks

Yiting Cao1, Yingzheng Wang1, Jumana Badar1

  • 1Department of Molecular Biology and Genetics, Weill Institute for Cell and Molecular Biology, Cornell University, Ithaca, NY, 14850, USA.

Insights

The phosphatase PPM1D/WIP1 is crucial for restarting stalled DNA replication forks after stress. It prevents excessive DNA degradation and ensures proper RAD51 recruitment, highlighting a new role in DNA repair.

Area of Science:

  • Molecular Biology
  • Cell Biology
  • Genetics

Background:

  • DNA replication stress triggers signaling pathways to protect genomic integrity.
  • Mechanisms regulating replication fork restart after stress are not fully understood.

Purpose of the Study:

  • To identify key regulators of replication fork restart.
  • To elucidate the role of PPM1D/WIP1 in replication stress recovery.

Main Methods:

  • Phosphoproteomic analysis to identify ATM substrates.
  • Functional assays to assess replication fork restart and DNA repair.
  • Genetic manipulation to study PPM1D/WIP1 loss-of-function.

Main Results:

  • PPM1D/WIP1 prevents excessive nucleolytic degradation of stalled replication forks.
  • Loss of PPM1D/WIP1 impairs RAD51 recruitment and fork restart.
  • ATM signaling, via 53BP1, antagonizes RAD51 and suppresses fork restart when PPM1D is deficient.

Conclusions:

  • PPM1D/WIP1 is a critical regulator of replication fork restart by restraining ATM signaling.
  • ATM hyper-signaling suppresses fork restart through RAD51 antagonization.
  • Targeting PPM1D or ATM may offer therapeutic strategies for DNA replication stress-related disorders.

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