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Updated: Sep 6, 2025

A Mass Spectrometry-Based Approach to Identify Phosphoprotein Phosphatases and their Interactors
Published on: April 29, 2022
Allosteric inhibition of PPM1D serine/threonine phosphatase via an altered conformational state
Peter G Miller1,2, Murugappan Sathappa3, Jamie A Moroco3
1Center for Cancer Research, Massachusetts General Hospital, Harvard Medical School, Boston, MA, USA.
Abstract:
PPM1D encodes a serine/threonine phosphatase that regulates numerous pathways including the DNA damage response and p53. Activating mutations and amplification of PPM1D are found across numerous cancer types. GSK2830371 is a potent and selective allosteric inhibitor of PPM1D, but its mechanism of binding and inhibition of catalytic activity are unknown. Here we use computational, biochemical and functional genetic studies to elucidate the molecular basis of GSK2830371 activity. These data confirm that GSK2830371 binds an allosteric site of PPM1D with high affinity. By further incorporating data from hydrogen deuterium exchange mass spectrometry and sedimentation velocity analytical ultracentrifugation, we demonstrate that PPM1D exists in an equilibrium between two conformations that are defined by the movement of the flap domain, which is required for substrate recognition. A hinge region was identified that is critical for switching between the two conformations and was directly implicated in the high-affinity binding of GSK2830371 to PPM1D. We propose that the two conformations represent active and inactive forms of the protein reflected by the position of the flap, and that binding of GSK2830371 shifts the equilibrium to the inactive form. Finally, we found that C-terminal truncating mutations proximal to residue 400 result in destabilization of the protein via loss of a stabilizing N- and C-terminal interaction, consistent with the observation from human genetic data that nearly all PPM1D mutations in cancer are truncating and occur distal to residue 400. Taken together, our findings elucidate the mechanism by which binding of a small molecule to an allosteric site of PPM1D inhibits its activity and provides insights into the biology of PPM1D.
Insights
GSK2830371, a PPM1D phosphatase inhibitor, binds an allosteric site, shifting PPM1D to an inactive conformation. This reveals the mechanism of PPM1D inhibition and cancer-associated mutations.
Area of Science:
- Biochemistry
- Molecular Biology
- Structural Biology
Background:
- PPM1D (protein phosphatase 1, magnesium-dependent 1D) is a key regulator of DNA damage response and p53 pathways.
- Activating mutations and amplification of PPM1D are prevalent in various cancers, making it a therapeutic target.
Purpose of the Study:
- To elucidate the molecular mechanism of action for the PPM1D inhibitor GSK2830371.
- To understand the structural basis of GSK2830371 binding and PPM1D inhibition.
Main Methods:
- Computational studies
- Biochemical assays
- Functional genetic studies
- Hydrogen-deuterium exchange mass spectrometry (HDX-MS)
- Sedimentation velocity analytical ultracentrifugation (SV-AUC)
Main Results:
- GSK2830371 binds to an allosteric site on PPM1D with high affinity.
- PPM1D exists in an equilibrium between two conformations, regulated by flap domain movement.
- A hinge region was identified as critical for conformational switching and inhibitor binding.
- GSK2830371 binding shifts the equilibrium towards an inactive PPM1D conformation.
- C-terminal truncating mutations destabilize PPM1D, correlating with cancer mutation patterns.
Conclusions:
- GSK2830371 inhibits PPM1D by binding an allosteric site and stabilizing an inactive conformation.
- The findings provide mechanistic insights into PPM1D inhibition and its role in cancer biology.
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