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Activation of proteinase-activated receptor-2 in mesothelial cells induces pleural inflammation
Y C Gary Lee1, Darryl A Knight, Kirk B Lane
1Centre for Respiratory Research, Rayne Institute, University College London, 5 University St., London WC1E 6JJ, UK. ycgarylee@hotmail.com
Abstract:
Pleural inflammation underlies many pleural diseases, but its pathogenesis remains unclear. Proteinase-activated receptor-2 (PAR(2)) is a novel seven-transmembrane receptor with immunoregulatory roles. We hypothesized that PAR(2) is present on mesothelial cells and can induce pleural inflammation. PAR(2) was detected by immunohistochemistry in all (19 parietal and 11 visceral) human pleural biopsies examined. In cultured murine mesothelial cells, a specific PAR(2)-activating peptide (SLIGRL-NH(2)) at 10, 100, and 1,000 muM stimulated a 3-, 42-, and 1,330-fold increase of macrophage inflammatory protein (MIP)-2 release relative to medium control, respectively (P < 0.05 all) and a 2-, 32-, and 75-fold rise over the control peptide (LSIGRL-NH(2), P < 0.05 all). A similar pattern was seen for TNF-alpha release. Known physiological activators of PAR(2), tryptase, trypsin, and coagulation factor Xa, also stimulated dose-dependent MIP-2 release from mesothelial cells in vitro. Dexamethasone inhibited the PAR(2)-mediated MIP-2 release in a dose-dependent manner. In vivo, pleural fluid MIP-2 levels in C57BL/6 mice injected intrapleurally with SLIGRL-NH(2) (10 mg/kg) were significantly higher than in mice injected with LSIGRL-NH(2) or PBS (2,710 +/- 165 vs. 880 +/- 357 vs. 88 +/- 46 pg/ml, respectively; P < 0.001). Pleural fluid neutrophil counts were higher in SLIGRL-NH(2) group than in the LSIGRL-NH(2) and PBS groups (by 40- and 26-fold, respectively; P < 0.05). This study establishes that activation of mesothelial cell PAR(2) potently induces the release of inflammatory cytokines in vitro and neutrophil recruitment into the pleural cavity in vivo.
Insights
Proteinase-activated receptor-2 (PAR(2)) on mesothelial cells triggers pleural inflammation by releasing inflammatory cytokines and recruiting neutrophils. This finding clarifies the pathogenesis of pleural diseases and suggests potential therapeutic targets.
Area of Science:
- Immunology
- Cell Biology
- Respiratory Medicine
Background:
- Pleural inflammation is central to many pleural diseases, but its underlying mechanisms are not fully understood.
- Proteinase-activated receptor-2 (PAR(2)), a seven-transmembrane receptor, plays a role in immune regulation.
Purpose of the Study:
- To investigate the presence and function of PAR(2) on mesothelial cells.
- To determine if PAR(2) activation can induce pleural inflammation.
Main Methods:
- Immunohistochemistry was used to detect PAR(2) in human pleural biopsies.
- Murine mesothelial cells were cultured to assess inflammatory mediator release (MIP-2, TNF-alpha) upon PAR(2) activation.
- In vivo studies involved intrapleural injection of PAR(2) agonists in mice to measure pleural fluid cytokine levels and neutrophil counts.
Main Results:
- PAR(2) was confirmed on human mesothelial cells.
- Activation of PAR(2) in vitro significantly increased macrophage inflammatory protein (MIP)-2 and TNF-alpha release from mesothelial cells.
- In vivo, PAR(2) activation led to elevated pleural fluid MIP-2 levels and a substantial increase in neutrophil recruitment.
Conclusions:
- Mesothelial cell PAR(2) activation is a potent inducer of pleural inflammation.
- This pathway contributes to inflammatory cytokine release and neutrophil influx into the pleural space.
- Findings offer insights into pleural disease pathogenesis and potential therapeutic strategies targeting PAR(2).
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