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Updated: Jul 12, 2025

Author Spotlight: Developing Parmodulins to Target Protease-Activated Receptors for Inflammation Control
Published on: May 24, 2024
1-Piperidine Propionic Acid as an Allosteric Inhibitor of Protease Activated Receptor-2
Monica Chinellato1, Matteo Gasparotto2, Santina Quarta1
1Department of Medicine, University of Padova, 35121 Padova, Italy.
Abstract:
In the last decades, studies on the inflammatory signaling pathways in multiple pathological contexts have revealed new targets for novel therapies. Among the family of G-protein-coupled Proteases Activated Receptors, PAR2 was identified as a driver of the inflammatory cascade in many pathologies, ranging from autoimmune disease to cancer metastasis. For this reason, many efforts have been focused on the development of potential antagonists of PAR2 activity. This work focuses on a small molecule, 1-Piperidine Propionic Acid (1-PPA), previously described to be active against inflammatory processes, but whose target is still unknown. Stabilization effects observed by cellular thermal shift assay coupled to in-silico investigations, including molecular docking and molecular dynamics simulations, suggested that 1-PPA binds PAR2 in an allosteric pocket of the receptor inactive conformation. Functional studies revealed the antagonist effects on MAPKs signaling and on platelet aggregation, processes mediated by PAR family members, including PAR2. Since the allosteric pocket binding 1-PPA is highly conserved in all the members of the PAR family, the evidence reported here suggests that 1-PPA could represent a promising new small molecule targeting PARs with antagonistic activity.
Insights
Researchers identified 1-Piperidine Propionic Acid (1-PPA) as a potential antagonist for Protease Activated Receptors (PARs). This small molecule targets an allosteric site on PAR2, inhibiting inflammatory signaling and platelet aggregation.
Area of Science:
- Biochemistry
- Pharmacology
- Molecular Biology
Background:
- Inflammatory signaling pathways are crucial in various diseases.
- Protease Activated Receptors (PARs), particularly PAR2, are key drivers of inflammation.
- Developing PAR2 antagonists is a therapeutic focus for inflammatory conditions.
Purpose of the Study:
- To identify the molecular target of 1-Piperidine Propionic Acid (1-PPA).
- To investigate the mechanism of action of 1-PPA in inflammatory processes.
- To evaluate 1-PPA as a potential therapeutic agent targeting PAR family members.
Main Methods:
- Cellular thermal shift assay (CETSA) to detect target engagement.
- In-silico methods: molecular docking and molecular dynamics simulations.
- Functional assays to assess effects on MAPK signaling and platelet aggregation.
Main Results:
- 1-PPA was found to bind to an allosteric pocket in the inactive conformation of PAR2.
- 1-PPA demonstrated antagonist effects on MAPK signaling pathways.
- 1-PPA inhibited PAR2-mediated platelet aggregation.
Conclusions:
- 1-PPA acts as an antagonist by binding to a conserved allosteric site on PAR2.
- The binding site is conserved across the PAR family, suggesting broader applicability.
- 1-PPA shows promise as a novel small molecule therapeutic targeting PARs.
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