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Updated: Jun 6, 2026

In vitro Coculture Assay to Assess Pathogen Induced Neutrophil Trans-epithelial Migration
Published on: January 6, 2014
Selective eicosanoid-generating capacity of cytoplasmic phospholipase A2 in Pseudomonas aeruginosa-infected
Bryan P Hurley1, Waheed Pirzai, Karen L Mumy
1Mucosal Immunology, Massachusetts General Hospital, Charlestown, 02129, USA. bphurley@partners.org
Abstract:
Airway neutrophil infiltration is a pathological hallmark observed in multiple lung diseases including pneumonia and cystic fibrosis. Bacterial pathogens such as Pseudomonas aeruginosa instigate neutrophil recruitment to the air space. Excessive accumulation of neutrophils in the lung often contributes to tissue destruction. Previous studies have unveiled hepoxilin A(3) as the key molecular signal driving neutrophils across epithelial barriers. The eicosanoid hepoxilin A(3) is a potent neutrophil chemoattractant produced by epithelial cells in response to infection with P. aeruginosa. The enzyme phospholipase A(2) liberates arachidonic acid from membrane phospholipids, the rate-limiting step in the synthesis of all eicosanoids, including hepoxilin A(3). Once generated, aracidonic acid is acted upon by multiple cyclooxygenases and lipoxygenases producing an array of functionally diverse eicosanoids. Although there are numerous phospholipase A(2) isoforms capable of generating arachidonic acid, the isoform most often associated with eicosanoid generation is cytoplasmic phospholipase A(2)α. In the current study, we observed that the cytoplasmic phospholipase A(2)α isoform is required for mediating P. aeruginosa-induced production of certain eicosanoids such as prostaglandin E(2). However, we found that neutrophil transepithelial migration induced by P. aeruginosa does not require cytoplasmic phospholipase A(2)α. Furthermore, P. aeruginosa-induced hepoxilin A(3) production persists despite cytoplasmic phospholipase A(2)α suppression and generation of the 12-lipoxygenase metabolite 12-HETE is actually enhanced in this context. These results suggest that alterative phospholipase A(2) isoforms are utilized to synthesize 12-lipoxygenase metabolites. The therapeutic implications of these findings are significant when considering anti-inflammatory therapies based on targeting eicosanoid synthesis pathways.
Insights
Pseudomonas aeruginosa infection triggers airway neutrophil infiltration, but this process does not require cytoplasmic phospholipase A(2)α. Alternative phospholipase A(2) pathways generate key signaling molecules like hepoxilin A(3) and 12-HETE.
Area of Science:
- Pulmonary immunology
- Inflammation research
- Eicosanoid signaling
Background:
- Neutrophil infiltration in airways is a key feature of lung diseases like pneumonia.
- Hepoxilin A(3) is a critical chemoattractant for neutrophils during Pseudomonas aeruginosa infection.
- Phospholipase A(2) (PLA(2)) enzymes initiate eicosanoid synthesis from membrane phospholipids.
Purpose of the Study:
- To investigate the role of cytoplasmic phospholipase A(2)α (cPLA(2)α) in Pseudomonas aeruginosa-induced neutrophil recruitment.
- To identify the specific phospholipase A(2) isoforms involved in hepoxilin A(3) and 12-HETE production.
Main Methods:
- Utilized cell-based assays to assess eicosanoid production and neutrophil migration.
- Employed genetic suppression of cytoplasmic phospholipase A(2)α to evaluate its necessity.
Main Results:
- Cytoplasmic phospholipase A(2)α is required for prostaglandin E(2) production but not for P. aeruginosa-induced neutrophil transepithelial migration.
- Hepoxilin A(3) production remains unaffected by cPLA(2)α suppression.
- 12-HETE generation is enhanced upon cPLA(2)α suppression, suggesting alternative PLA(2) involvement.
Conclusions:
- Neutrophil recruitment during P. aeruginosa infection is independent of cytoplasmic phospholipase A(2)α.
- Alternative phospholipase A(2) isoforms contribute to the synthesis of specific eicosanoids, including 12-HETE.
- Findings have implications for developing targeted anti-inflammatory therapies by modulating eicosanoid pathways.
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