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Updated: Jan 18, 2026

Direct Restart of a Replication Fork Stalled by a Head-On RNA Polymerase
Published on: April 29, 2010
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.
Abstract:
In response to DNA replication stress, DNA damage signaling kinases inhibit origin firing and promote the remodeling and stabilization of replication forks, leading to a systemic reduction in DNA synthesis that protects genomic integrity. Little is understood about the regulatory mechanisms of replication stress recovery, including the mechanisms involved in the restart of stalled replication forks. Here, we identify the oncogenic phosphatase PPM1D/WIP1 as a critical regulator of replication fork restart. Upon recovery from replication stress, PPM1D prevents excessive MRE11- and DNA2-dependent nucleolytic degradation of stalled forks. Loss of PPM1D function leads to defects in RAD51 recruitment to chromatin and impairs RAD51-dependent fork restart. Phosphoproteomic analysis reveals that PPM1D regulates a network of ATM substrates, several of which are phosphorylated at an S/T-Q-(E/D)n motif. Strikingly, inhibition of ATM suppresses the deleterious consequences of impaired PPM1D function at replication forks, enabling timely fork restart. The dominant effect of ATM hyper-signaling in suppressing fork restart occurs, in part, through the excessive engagement of 53BP1 and consequent RAD51 antagonization. These findings uncover a new mode of ATM signaling responding to fork stalling and highlights the need for PPM1D to restrain ATM signaling and enable proper fork restart.
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.
Related Concept Videos
Restarting Stalled Replication Forks
Restarting Stalled Replication Forks
DNA Damage can Stall the Cell Cycle
DNA Damage Can Stall the Cell Cycle
The DNA Replication Fork
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