Blockade of Proteinase-Activated Receptor 2 (PAR2) Attenuates Neuroinflammation in Experimental Autoimmune
Rahil Eftekhari1, Benjamin W Ewanchuk1, Khalil S Rawji1
1Department of Physiology & Pharmacology (R.E., M.D.H.), Department of Medicine (R.E., M.D.H.), Department of Clinical Neurosciences (R.E., K.S.R., H.F.K.), Department of Biochemistry and Molecular Biology (B.W.E., R.M.Y.), Department of Comparative Biology and Experimental Medicine (B.W.E., R.M.Y.), and Department of Cell Biology and Anatomy (H.F.K.), Cumming School of Medicine, University of Calgary, Calgary, Alberta, Canada; and Department of Immunology, School of Medicine, Tehran University of Medical Sciences, Tehran, Iran (R.E., F.N.).
Abstract:
Proteinase-activated receptor-2 (PAR2), which modulates inflammatory responses, is elevated in the central nervous system in multiple sclerosis (MS) and in its murine model, experimental autoimmune encephalomyelitis (EAE). In PAR2-null mice, disease severity of EAE is markedly diminished. We therefore tested whether inhibiting PAR2 activation in vivo might be a viable strategy for the treatment of MS. Using the EAE model, we show that a PAR2 antagonist, the pepducin palmitoyl-RSSAMDENSEKKRKSAIK-amide (P2pal-18S), attenuates EAE progression by affecting immune cell function. P2pal-18S treatment markedly diminishes disease severity and reduces demyelination, as well as the infiltration of T-cells and macrophages into the central nervous system. Moreover, P2pal-18S decreases granulocyte-macrophage colony-stimulating factor (GM-CSF) production and T-cell activation in cultured splenocytes and prevents macrophage polarization in vitro. We conclude that PAR2 plays a key role in regulating neuroinflammation in EAE and that PAR2 antagonists represent promising therapeutic agents for treating MS and other neuroinflammatory diseases. SIGNIFICANCE STATEMENT: Proteinase-activated receptor-2 modulates inflammatory responses and is increased in multiple sclerosis lesions. We show that the proteinase-activated receptor-2 antagonist palmitoyl-RSSAMDENSEKKRKSAIK-amide reduces disease in the murine experimental autoimmune encephalomyelitis model of multiple sclerosis by inhibiting T-cell and macrophage activation and infiltration into the central nervous system, making it a potential treatment for multiple sclerosis.
Insights
Inhibiting proteinase-activated receptor-2 (PAR2) with an antagonist reduced disease severity in a multiple sclerosis model. This approach suppressed immune cell activation and infiltration, offering a potential new treatment for multiple sclerosis and neuroinflammatory diseases.
Area of Science:
- Neuroimmunology
- Pharmacology
Background:
- Proteinase-activated receptor-2 (PAR2) is implicated in inflammatory responses and elevated in the central nervous system of multiple sclerosis (MS) patients and in the experimental autoimmune encephalomyelitis (EAE) model.
- PAR2-null mice exhibit significantly reduced EAE severity, suggesting a key role for PAR2 in disease pathogenesis.
Purpose of the Study:
- To investigate the therapeutic potential of inhibiting PAR2 activation in vivo for the treatment of MS.
Main Methods:
- Utilized the EAE mouse model to test the efficacy of a novel PAR2 antagonist, P2pal-18S.
- Assessed disease severity, demyelination, immune cell infiltration (T-cells, macrophages), granulocyte-macrophage colony-stimulating factor (GM-CSF) production, T-cell activation, and macrophage polarization.
Main Results:
- P2pal-18S treatment significantly attenuated EAE progression, reduced demyelination, and decreased the infiltration of T-cells and macrophages into the CNS.
- The antagonist also reduced GM-CSF production and T-cell activation in vitro, and prevented macrophage polarization.
Conclusions:
- PAR2 plays a critical role in regulating neuroinflammation in the EAE model.
- PAR2 antagonists, such as P2pal-18S, demonstrate promise as therapeutic agents for MS and other neuroinflammatory conditions.
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