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VCAM-1-mediated neutrophil infiltration exacerbates ambient fine particle-induced lung injury
Anfeng Cui1, Meng Xiang1, Ming Xu1
1Department of Physiology and Pathophysiology, School of Basic Medical Sciences, Fudan University, 130 Dongan Road, Building 7, Room 214, Shanghai, 200032, PR China.
Background:
Fine ambient particle matter (PM2.5) induces inflammatory lung injury; however, whether intratracheal administration of PM2.5 increases pulmonary polymorphonuclear leukocyte (PMN) infiltration, the mechanism of infiltration, and if these cells exacerbate PM2.5-induced lung injury are unknown.
Methods:
Using 32,704 subjects, the association between blood PMNs and ambient PM2.5 levels on the previous day was retrospectively analyzed. Neutropenia was achieved by injecting mice with PMN-specific antibodies. Inhibition of PMN infiltration was achieved by pretreating PMNs with soluble vascular cell adhesion molecule-1 (sVCAM-1). The effects of PMNs on PM2.5-induced lung injury and endothelial dysfunction were observed.
Result:
Short-term PM2.5 (> 75 μg/m3 air) exposure increased the PMN/white blood cell ratio and the PMN count in human peripheral blood observed during routine examination. A significant number of PM2.5-treated PMNs was able to bind sVCAM-1. In mice, intratracheally-instilled PM2.5 deposited in the alveolar space and endothelial cells, which caused significant lung edema, morphological disorder, increased permeability of the endothelial-alveolar epithelial barrier, and PMN infiltration with increased VCAM-1 expression. Depletion of circulatory PMNs inhibited these adverse effects. Replenishment of untreated PMNs, but not those pretreated with soluble VCAM-1, restored lung injury. In vitro, PM2.5 increased VCAM-1 expression and endothelial and epithelial monolayer permeability, and promoted PMN adhesion to, chemotaxis toward, and migration across these monolayers. PMNs, but not those pretreated with soluble VCAM-1, exacerbated these effects.
Conclusion:
VCAM-1-mediated PMN infiltration was essential for a detrimental cycle of PM2.5-induced inflammation and lung injury. Results suggest that drugs that inhibit PMN function might prevent acute deterioration of chronic pulmonary and cardiovascular diseases triggered by PM2.5.
Insights
Fine particulate matter (PM2.5) exposure triggers lung inflammation and injury by increasing pulmonary polymorphonuclear leukocyte (PMN) infiltration, a process mediated by VCAM-1. Inhibiting PMN function may prevent PM2.5-induced exacerbations of lung and cardiovascular diseases.
Area of Science:
- Environmental Health
- Pulmonary Medicine
- Immunology
Background:
- Fine ambient particulate matter (PM2.5) is known to induce inflammatory lung injury.
- The specific role of pulmonary polymorphonuclear leukocyte (PMN) infiltration in PM2.5-induced lung injury and its underlying mechanisms remained unclear.
Purpose of the Study:
- To investigate whether PM2.5 exposure increases pulmonary PMN infiltration.
- To elucidate the mechanism of PMN infiltration and its role in exacerbating PM2.5-induced lung injury.
Main Methods:
- Retrospective analysis of blood PMNs and ambient PM2.5 levels in 32,704 subjects.
- Experimental models in mice involving PMN depletion and inhibition of PMN infiltration using antibodies and soluble VCAM-1.
- In vitro studies assessing PM2.5 effects on endothelial and epithelial cells and PMN adhesion, chemotaxis, and migration.
Main Results:
- Short-term PM2.5 exposure elevated blood PMN counts in humans.
- In mice, PM2.5 instillation caused lung edema, barrier dysfunction, and PMN infiltration, which were mitigated by PMN depletion.
- VCAM-1 expression was increased by PM2.5, facilitating PMN binding and exacerbating lung injury; this effect was reversed by blocking PMN-VCAM-1 interaction.
Conclusions:
- VCAM-1-mediated PMN infiltration is a critical component of the detrimental cycle of PM2.5-induced inflammation and lung injury.
- Targeting PMN function presents a potential therapeutic strategy to prevent acute exacerbations of chronic pulmonary and cardiovascular diseases triggered by PM2.5.
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