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PLA2G5 regulates transglutaminase activity of human IL-4-activated M2 macrophages through PGE2 generation
Munehiro Yamaguchi1, Jennifer Zacharia1, Tanya M Laidlaw1
1Department of Medicine, Harvard Medical School, Boston Massachusetts, USA; and the Jeff and Penny Vinik Center for Allergic Disease Research, Division of Rheumatology, Immunology and Allergy, Brigham and Women's Hospital, Boston, Massachusetts, USA.
Abstract:
Phospholipases A2 are enzymes that liberate membrane-bound lipids in a tissue and cell-specific fashion. Group V secretory phospholipase A2 is necessary for the development of M2 macrophages and their effector functions in a mouse model of the T-helper-2 allergic airway inflammation. However, the function of group V phospholipase A2 in human M2 activation and T-helper-2 inflammation is ill-defined. Transglutaminase-2, a protein cross-linking enzyme, is a newly identified marker of both human and mouse interleukin-4-activated M2 macrophages and is also found in the lungs of patients with asthma. We report that group V phospholipase A2 and transglutaminase-2 colocalized in macrophages of human nasal polyp tissue obtained from patients with T-helper-2 eosinophilic inflammation, and their coexpression positively correlated with the number of eosinophils in each tissue specimen. We demonstrate that in human monocyte-derived macrophages activated by interleukin-4, group V phospholipase A2 translocated and colocalized with transglutaminase-2 in the cytoplasm and on the membrane of macrophages. Moreover, knocking down group V phospholipase A2 with small interfering ribonucleic acid reduced macrophage transglutaminase activity, whereas mass spectrometry analysis of lipids also showed reduced prostaglandin E2 production. Finally, exogenous prostaglandin E2 restored transglutaminase activity of group V phospholipase A2-small interfering ribonucleic acid-treated macrophages. Thus, our study shows a novel function of group V phospholipase A2 in regulating the transglutaminase activity of human interleukin-4-activated M2 macrophages through prostaglandin E2 generation and suggests that group V phospholipase A2 is a functionally relevant enzyme that may have therapeutic value for the treatment of human T-helper-2 inflammatory disorders.
Insights
Group V phospholipase A2 regulates transglutaminase activity in human M2 macrophages via prostaglandin E2. This enzyme may offer therapeutic potential for T-helper-2 inflammatory diseases like asthma.
Area of Science:
- Biochemistry
- Immunology
- Cell Biology
Background:
- Phospholipases A2 (PLA2) are enzymes involved in lipid metabolism.
- Group V secretory PLA2 (GV-sPLA2) is crucial for M2 macrophage function in mouse models of allergic airway inflammation.
- The role of GV-sPLA2 in human M2 activation and T-helper-2 inflammation remains unclear.
Purpose of the Study:
- To investigate the function of GV-sPLA2 in human M2 macrophages and T-helper-2 inflammation.
- To explore the relationship between GV-sPLA2, transglutaminase-2 (TG2), and inflammatory markers in human tissues.
Main Methods:
- Immunohistochemistry to assess colocalization of GV-sPLA2 and TG2 in human nasal polyp tissue.
- Interleukin-4 (IL-4) stimulation of human monocyte-derived macrophages.
- Small interfering ribonucleic acid (siRNA) knockdown of GV-sPLA2.
- Assay of macrophage transglutaminase activity.
- Mass spectrometry for lipid analysis.
- Prostaglandin E2 (PGE2) rescue experiments.
Main Results:
- GV-sPLA2 and TG2 colocalized in macrophages from human nasal polyps, correlating with eosinophil counts.
- IL-4-activated human M2 macrophages showed GV-sPLA2 translocation and colocalization with TG2.
- GV-sPLA2 knockdown reduced macrophage TG2 activity and prostaglandin E2 (PGE2) production.
- Exogenous PGE2 restored TG2 activity in GV-sPLA2-deficient macrophages.
Conclusions:
- GV-sPLA2 plays a novel role in regulating human IL-4-activated M2 macrophage transglutaminase activity through PGE2 generation.
- GV-sPLA2 is a functionally significant enzyme in human T-helper-2 inflammatory disorders.
- GV-sPLA2 may represent a potential therapeutic target for T-helper-2 inflammatory conditions.
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