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Published on: March 21, 2021
Adenosine receptor A3 is a critical mediator in LPS-induced pulmonary inflammation
Rosalyn Wagner1, Kristian-Christos Ngamsri, Stefanie Stark
1Dept. of Anesthesiology and Intensive Care Medicine, University Hospital of Tübingen, Germany.
Abstract:
Adenosine receptor A(3) (A(3)) regulates directed movement of polymorphonuclear cells (PMNs) to sites of inflammation and has been implicated as a relevant mediator in models of inflammatory diseases. Here, we sought to characterize the role of A(3) in a murine model of lung inflammation. Initial studies revealed that pulmonary A(3) transcript levels were elevated following LPS exposure in vivo. In addition, inhalation of LPS increased the accumulation of PMNs in wild-type and A(3)(-/-) mice in all lung compartments. Pretreatment with the specific A(3)-agonist Cl-IB-MECA significantly decreased migration of PMNs into lung interstitium and alveolar air space of wild-type mice but not of A(3)(-/-) mice. Lower PMN counts were associated with reduced levels of TNF-α and IL-6 in the alveolar space of wild-type mice that received Cl-IB-MECA. In addition, Cl-IB-MECA attenuated LPS-induced microvascular permeability in wild-type mice as assessed by the extravasation of Evans blue. In pulmonary microvascular endothelial cells, Cl-IB-MECA reduced LPS-induced cytoskeletal remodeling and cell retraction, consistent with a specific role of A(3) for maintaining endothelial integrity. Migratory activity of human PMNs across an endothelial or epithelial monolayer was reduced when A(3) was activated on PMNs. Studies in chimeric mice, however, revealed that Cl-IB-MECA required A(3) on both hematopoietic and nonhematopoietic cells to reduce transmigration in vivo. Together, our results shed new light on the role of A(3) in LPS-induced PMN trafficking in the lung and suggest pharmacological modulation of A(3)-dependent pathways as a promising approach in lung inflammation.
Insights
Targeting adenosine receptor A3 (A3) with agonists like Cl-IB-MECA reduces inflammatory cell migration in the lungs. This suggests A3 modulation is a promising strategy for treating lung inflammation.
Area of Science:
- Immunology
- Pharmacology
- Respiratory Medicine
Background:
- Adenosine receptor A3 (A3) plays a role in regulating polymorphonuclear cell (PMN) movement to inflammation sites.
- A3 is implicated as a mediator in inflammatory disease models.
Purpose of the Study:
- To characterize the role of A3 in a murine model of lung inflammation induced by lipopolysaccharide (LPS).
- To investigate the therapeutic potential of A3 agonists in mitigating LPS-induced lung inflammation.
Main Methods:
- Mice (wild-type and A3 knockout) were exposed to LPS via inhalation.
- Treatment with the A3-specific agonist Cl-IB-MECA was administered.
- PMN accumulation, cytokine levels (TNF-α, IL-6), microvascular permeability, and endothelial cell responses were assessed.
- Studies in chimeric mice were used to determine the cellular source of A3 action.
Main Results:
- Pulmonary A3 transcript levels increased post-LPS exposure.
- Cl-IB-MECA pretreatment significantly reduced PMN migration into lung interstitium and alveolar spaces in wild-type but not A3 knockout mice.
- Reduced PMN counts correlated with lower TNF-α and IL-6 levels.
- Cl-IB-MECA attenuated LPS-induced microvascular permeability and endothelial cell changes.
- A3 activation on PMNs reduced their migratory activity across monolayers.
- In vivo efficacy required A3 expression on both hematopoietic and nonhematopoietic cells.
Conclusions:
- Adenosine receptor A3 is a key regulator of PMN trafficking in LPS-induced lung inflammation.
- Pharmacological modulation of A3-dependent pathways offers a potential therapeutic strategy for lung inflammatory conditions.
- A3's role in maintaining endothelial integrity is crucial for controlling inflammation.
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