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Published on: April 16, 2019
MicroRNA-155 is essential for T(H)2-mediated allergen-induced eosinophilic inflammation in the lung
Carina Malmhäll1, Sahar Alawieh1, You Lu1
1Krefting Research Centre, Department of Internal Medicine and Clinical Nutrition, Institute of Medicine, University of Gothenburg, Gothenburg, Sweden.
Background:
Allergic asthma is a chronic disease of the conducting airways characterized by T(H)2 inflammation and tissue remodeling after exposure to inhaled allergens. Although the T(H)2 profile is undisputed, the underlying molecular mechanisms leading to this abnormal T(H)2 profile remain largely unclear. MicroRNAs (miRNAs) are short noncoding RNAs that are important regulators of gene expression in the immune system. However, the role of miRNAs, specifically miR-155, in the regulation of allergic airway inflammation is unexplored.
Objectives:
We sought to assess the contribution of miR-155 in a mouse model of allergic airway inflammation.
Methods:
To investigate a role for miR-155 in the regulation of allergic inflammation in vivo, we used miR-155 knockout (KO) and wild-type (WT) mice sensitized and exposed to ovalbumin.
Results:
miR-155 deficiency resulted in diminished eosinophilic inflammation and mucus hypersecretion in the lungs of allergen-sensitized and allergen-challenged mice compared with WT control animals. This was supported by a reduction in T(H)2 cell numbers and airway T(H)2 cytokine levels and complete abrogation of allergen-induced airway eotaxin-2/CCL24 and periostin levels in miR-155 KO mice. Intranasal instillation of eotaxin-2/CCL24 before allergen challenge partially restored airway eosinophilia in miR-155 KO mice, and adoptive transfer of CD4(+) T cells resulted in a similar degree of airway eosinophilia in miR-155 KO and WT mice. Furthermore, the transcription factor PU.1, a negative regulator of T(H)2 cytokine production, was upregulated in the airways of allergen-challenged miR-155 KO mice compared with WT mice.
Conclusions:
Our data provides evidence that miR-155 contributes to the regulation of allergic airway inflammation by modulating T(H)2 responses through the transcription factor PU.1.
Insights
MicroRNA-155 (miR-155) plays a key role in allergic asthma by promoting T(H)2 inflammation. Inhibiting miR-155 reduces airway inflammation and mucus production in a mouse model, highlighting its therapeutic potential.
Area of Science:
- Immunology
- Molecular Biology
- Respiratory Medicine
Background:
- Allergic asthma involves T(H)2 inflammation and airway remodeling.
- The molecular drivers of T(H)2 skewing in asthma are not fully understood.
- MicroRNAs (miRNAs) regulate gene expression in the immune system, but their role in allergic airway inflammation is largely unexplored.
Purpose of the Study:
- To investigate the role of miR-155 in allergic airway inflammation.
- To assess the contribution of miR-155 to T(H)2 responses in a mouse model of asthma.
Main Methods:
- Utilized miR-155 knockout (KO) and wild-type (WT) mice.
- Induced allergic airway inflammation via ovalbumin sensitization and challenge.
- Analyzed inflammatory cell counts, cytokine levels, and gene expression in lung tissues.
Main Results:
- miR-155 deficiency significantly reduced eosinophilic airway inflammation and mucus hypersecretion.
- KO mice showed decreased T(H)2 cell numbers and T(H)2 cytokine levels.
- Upregulation of the transcription factor PU.1 was observed in miR-155 KO mice, suggesting a regulatory mechanism.
Conclusions:
- miR-155 is a critical regulator of allergic airway inflammation.
- The study demonstrates that miR-155 modulates T(H)2 responses, partly through the transcription factor PU.1.
- Targeting miR-155 may offer a novel therapeutic strategy for allergic asthma.
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