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Updated: Jun 15, 2026

Quantitative Detection of DNA-Protein Crosslinks and Their Post-Translational Modifications
Published on: April 21, 2023
Repo-man controls a protein phosphatase 1-dependent threshold for DNA damage checkpoint activation
Aimin Peng1, Andrea L Lewellyn, William P Schiemann
1Howard Hughes Medical Institute, University of Colorado School of Medicine, Aurora, CO 80045, USA.
Background:
In response to DNA damage, cells activate checkpoints to halt cell-cycle progression and prevent genomic instability. Checkpoint activation induced by DNA double-strand breaks (DSB) is dependent on the ATM kinase, a master regulator of the DNA damage response (DDR) that is activated through autophosphorylation and monomerization.
Results:
Here we show that either protein phosphatase 1 or 2A is sufficient to suppress activation of the DDR and that simultaneous inhibition of both phosphatases fully activates the response. PP1-dependent DDR regulation is mediated by its chromatin-targeting subunit, Repo-Man. Studies in Xenopus egg extracts demonstrate that Repo-Man interacts with ATM and PP1 through distinct domains, leading to PP1-dependent regulation of ATM phosphorylation and activation. Consequently, the level of Repo-Man determines the activation threshold of the DNA damage checkpoint. Repo-Man interacts and extensively colocalizes with ATM in human cells. Expression of wild-type, but not PP1 binding-deficient, Repo-Man attenuates DNA damage-induced ATM activation. Moreover, Repo-Man dissociates from active ATM at DNA damage sites, suggesting that activation of the DDR involves removal of inhibitory regulators. Analysis of primary tumor tissues and cell lines demonstrates that Repo-Man is frequently upregulated in many types of cancers. Elevated Repo-Man expression blunts DDR activation in precancerous cells, whereas knockdown of Repo-Man in malignant cancer cells resensitizes the DDR and restrains growth in soft agar.
Conclusions:
We report essential DDR regulation mediated by Repo-Man-PP1 and further delineate underlying mechanisms. Moreover, our evidence suggests that elevated Repo-Man contributes to cancer progression.
Insights
Repo-Man, a protein regulating DNA damage response (DDR) checkpoints, is crucial for preventing genomic instability. Elevated Repo-Man in cancer blunts DDR, promoting tumor growth, while its reduction restores DDR and restrains cancer progression.
Area of Science:
- Cellular biology
- Molecular oncology
- DNA damage response
Background:
- Cell cycle checkpoints prevent genomic instability following DNA damage.
- ATM kinase activation, through autophosphorylation and monomerization, is critical for DNA double-strand break (DSB) response.
- Protein phosphatases play a role in regulating the DNA damage response (DDR).
Purpose of the Study:
- To investigate the role of protein phosphatases, specifically PP1 and PP2A, in regulating the DNA damage response (DDR).
- To elucidate the mechanism by which Repo-Man, a PP1-targeting subunit, modulates ATM kinase activity and DDR activation.
- To determine the significance of Repo-Man in cancer progression and its impact on DDR.
Main Methods:
- Utilized Xenopus egg extracts to study Repo-Man, ATM, and PP1 interactions.
- Assessed ATM activation and DDR signaling in human cells with varying Repo-Man expression levels.
- Analyzed Repo-Man expression in primary tumor tissues and cancer cell lines.
- Investigated the effect of Repo-Man knockdown on DDR and cancer cell growth.
Main Results:
- Inhibition of both PP1 and PP2A fully activated the DDR, while either alone was sufficient to suppress it.
- Repo-Man mediates PP1-dependent regulation of ATM phosphorylation and activation.
- Elevated Repo-Man levels in cancer cells blunt DDR activation and promote tumor growth.
- Repo-Man knockdown in cancer cells resensitizes DDR and inhibits growth.
Conclusions:
- Repo-Man, in complex with PP1, is essential for regulating the DNA damage response (DDR).
- The level of Repo-Man determines the activation threshold of DNA damage checkpoints.
- Upregulation of Repo-Man is implicated in cancer progression by impairing DDR.
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