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Endothelial Cell Protein C Receptor Deficiency Attenuates Streptococcus pneumoniae-induced Pleural Fibrosis
Shiva Keshava1, Jhansi Magisetty1, Torry A Tucker1
1Department of Cellular and Molecular Biology.
Insights
Endothelial protein C receptor (EPCR) deficiency protects against Streptococcus pneumoniae infection. EPCR-deficient mice showed reduced lung damage, pleural thickening, and bacterial load, indicating EPCR
Area of Science:
- Immunology
- Pulmonary Medicine
- Vascular Biology
Background:
- Streptococcus pneumoniae causes community-acquired pneumonia, potentially leading to pleural complications like fibrosis.
- Pleural fibrosis pathogenesis involves complex immune, coagulation, and fibrinolysis interactions.
- Endothelial protein C receptor (EPCR) is key in the protein C anticoagulant pathway.
Purpose of the Study:
- To investigate the role of EPCR in Streptococcus pneumoniae-induced pleural thickening and fibrosis.
- To evaluate EPCR's impact on lung function and inflammation during pneumococcal infection.
Main Methods:
- Used wild-type, EPCR-overexpressing, and EPCR-deficient mice models.
- Intrapleural instillation of Streptococcus pneumoniae to induce infection.
- Assessed lung compliance, lung volume, pleural thickening, mesomesenchymal transition markers, immune cell infiltration, and bacterial burden.
Main Results:
- EPCR deficiency protected mice from S. pneumoniae-induced lung function impairment and pleural thickening.
- EPCR-deficient mice exhibited reduced pleural thickening, mesomesenchymal transition, and inflammatory cell infiltration.
- EPCR deficiency led to a significantly lower bacterial burden in pleural lavage, lungs, and blood.
Conclusions:
- EPCR plays a significant role in the pathogenesis of S. pneumoniae-induced pleural injury and fibrosis.
- EPCR deficiency confers protection against pneumococcal infection-induced lung damage and pleural remodeling.
- Targeting EPCR may offer a therapeutic strategy for managing complicated pneumococcal pneumonia.
Abstract:
Streptococcus pneumoniae is the leading cause of hospital community-acquired pneumonia. Patients with pneumococcal pneumonia may develop complicated parapneumonic effusions or empyema that can lead to pleural organization and subsequent fibrosis. The pathogenesis of pleural organization and scarification involves complex interactions between the components of the immune system, coagulation, and fibrinolysis. EPCR (endothelial protein C receptor) is a critical component of the protein C anticoagulant pathway. The present study was performed to evaluate the role of EPCR in the pathogenesis of S. pneumoniae infection-induced pleural thickening and fibrosis. Our studies show that the pleural mesothelium expresses EPCR. Intrapleural instillation of S. pneumoniae impairs lung compliance and lung volume in wild-type and EPCR-overexpressing mice but not in EPCR-deficient mice. Intrapleural S. pneumoniae infection induces pleural thickening in wild-type mice. Pleural thickening is more pronounced in EPCR-overexpressing mice, whereas it is reduced in EPCR-deficient mice. Markers of mesomesenchymal transition are increased in the visceral pleura of S. pneumoniae-infected wild-type and EPCR-overexpressing mice but not in EPCR-deficient mice. The lungs of wild-type and EPCR-overexpressing mice administered intrapleural S. pneumoniae showed increased infiltration of macrophages and neutrophils, which was significantly reduced in EPCR-deficient mice. An analysis of bacterial burden in the pleural lavage, the lungs, and blood revealed a significantly lower bacterial burden in EPCR-deficient mice compared with wild-type and EPCR-overexpressing mice. Overall, our data provide strong evidence that EPCR deficiency protects against S. pneumoniae infection-induced impairment of lung function and pleural remodeling.
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