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Published on: June 16, 2023
Attenuation of chronic pulmonary inflammation in A2B adenosine receptor knockout mice
Rinat Zaynagetdinov1, Sergey Ryzhov, Anna E Goldstein
1Division of Cardiovascular Medicine, Vanderbilt University, Nashville, Tennessee 37232-6300, USA.
Abstract:
Pharmacologic evidence suggests that activation of A(2B) adenosine receptors results in proinflammatory effects relevant to the progression of asthma, a chronic lung disease associated with elevated interstitial adenosine concentrations in the lung. This concept has been challenged by the finding that genetic removal of A(2B) receptors leads to exaggerated responses in models of acute inflammation. Therefore, the goal of our study was to determine the effects of A(2B) receptor gene ablation in the context of ovalbumin-induced chronic pulmonary inflammation. We found that repetitive airway allergen challenge induced a significant increase in adenosine levels in fluid recovered by bronchoalveolar lavage. Genetic ablation of A(2B) receptors significantly attenuated allergen-induced chronic pulmonary inflammation, as evidenced by a reduction in the number of bronchoalveolar lavage eosinophils and in peribronchial eosinophilic infiltration. The most striking difference in the pulmonary inflammation induced in A(2B) receptor knockout (A(2B)KO) and wild-type mice was the lack of allergen-induced IL-4 release in the airways of A(2B)KO animals, in line with a significant reduction in IL-4 protein and mRNA levels in lung tissue. In addition, attenuation of allergen-induced transforming growth factor-beta release in airways of A(2B)KO mice correlated with reduced airway smooth muscle and goblet cell hyperplasia/hypertrophy. In conclusion, genetic removal of A(2B) adenosine receptors in mice leads to inhibition of allergen-induced chronic pulmonary inflammation and airway remodeling. These findings are in agreement with previous pharmacologic studies suggesting a deleterious role for A(2B) receptor signaling in chronic lung inflammation.
Insights
Removing A(2B) adenosine receptors inhibited chronic lung inflammation and airway remodeling in mice. This suggests A(2B) receptor signaling plays a harmful role in asthma progression.
Area of Science:
- Immunology
- Pulmonary Medicine
- Pharmacology
Background:
- Pharmacologic studies suggest A(2B) adenosine receptor activation promotes inflammation in asthma.
- Genetic studies show A(2B) receptor removal can worsen acute inflammation, creating conflicting evidence.
Purpose of the Study:
- To investigate the role of A(2B) adenosine receptors in chronic, allergen-induced pulmonary inflammation.
- To determine the effect of A(2B) receptor gene ablation on asthma progression in a mouse model.
Main Methods:
- Ovalbumin-induced chronic pulmonary inflammation model in A(2B) receptor knockout (A(2B)KO) and wild-type mice.
- Analysis of bronchoalveolar lavage fluid for inflammatory cells (eosinophils) and cytokine levels (IL-4, TGF-beta).
- Histological examination of lung tissue for airway smooth muscle and goblet cell changes.
Main Results:
- Allergen challenge increased adenosine levels in wild-type mice.
- A(2B)KO mice showed significantly reduced pulmonary inflammation, fewer eosinophils, and less peribronchial infiltration.
- A(2B)KO mice exhibited significantly lower IL-4 release and reduced airway smooth muscle/goblet cell hyperplasia compared to wild-type.
Conclusions:
- Genetic deletion of A(2B) adenosine receptors attenuates chronic allergic lung inflammation and airway remodeling.
- Findings support a detrimental role for A(2B) receptor signaling in the pathogenesis of chronic lung diseases like asthma.
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