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Published on: September 20, 2024
miR-122 promotes virus-induced lung disease by targeting SOCS1
Adam M Collison1, Leon A Sokulsky1, Elizabeth Kepreotes1
1Priority Research Centre GrowUpWell, Experimental and Translational Respiratory Medicine Group, School of Medicine and Public Health, University of Newcastle, Newcastle, New South Wales, Australia.
Insights
Rhinovirus (RV) infection increases miR-122, worsening childhood lung disease by suppressing SOCS1. Inhibiting miR-122 offers a potential therapeutic strategy for RV-induced bronchiolitis and asthma exacerbations.
Area of Science:
- Pediatric Respiratory Medicine
- Molecular Biology
- Immunology
Background:
- Virus-induced respiratory infections pose a significant health burden in children.
- Rhinoviruses (RVs) are common causes of respiratory illnesses, linked to bronchiolitis and asthma exacerbations.
- Early-life bronchiolitis is a risk factor for asthma development.
Purpose of the Study:
- To investigate the role of microRNA 122 (miR-122) in rhinovirus-induced lung disease.
- To explore the therapeutic potential of targeting miR-122 in pediatric respiratory infections.
Main Methods:
- Rhinovirus infection was induced in mouse models and human airway cells.
- miR-122 expression and its target, SOCS1, were analyzed.
- In vivo inhibition of miR-122 and SOCS1 gene silencing were performed.
- Clinical data from infants with bronchiolitis were analyzed.
Main Results:
- RV infection upregulated miR-122 in mouse lungs and human airway cells.
- Inhibition of miR-122 reduced lung inflammation, CXCL2, and airway hyperreactivity.
- miR-122 inhibition increased SOCS1 levels, and SOCS1 silencing reversed protective effects.
- Higher miR-122 levels in infants correlated with worse clinical outcomes.
Conclusions:
- miR-122 promotes RV-induced lung disease by suppressing SOCS1.
- Targeting miR-122 with anti-miR-122 oligonucleotides is a potential therapeutic strategy for RV-induced bronchiolitis and asthma exacerbations.
Abstract:
Virus-induced respiratory tract infections are a major health burden in childhood, and available treatments are supportive rather than disease modifying. Rhinoviruses (RVs), the cause of approximately 80% of common colds, are detected in nearly half of all infants with bronchiolitis and the majority of children with an asthma exacerbation. Bronchiolitis in early life is a strong risk factor for the development of asthma. Here, we found that RV infection induced the expression of miRNA 122 (miR-122) in mouse lungs and in human airway epithelial cells. In vivo inhibition specifically in the lung reduced neutrophilic inflammation and CXCL2 expression, boosted innate IFN responses, and ameliorated airway hyperreactivity in the absence and in the presence of allergic lung inflammation. Inhibition of miR-122 in the lung increased the levels of suppressor of cytokine signaling 1 (SOCS1), which is an in vitro-validated target of miR-122. Importantly, gene silencing of SOCS1 in vivo completely reversed the protective effects of miR-122 inhibition on RV-induced lung disease. Higher miR-122 expression in nasopharyngeal aspirates was associated with a longer time on oxygen therapy and a higher rate of treatment failure in 87 infants hospitalized with moderately severe bronchiolitis. These results suggest that miR-122 promotes RV-induced lung disease via suppression of its target SOCS1 in vivo. Higher miR-122 expression was associated with worse clinical outcomes, highlighting the potential use of anti-miR-122 oligonucleotides, successfully trialed for treatment of hepatitis C, as potential therapeutics for RV-induced bronchiolitis and asthma exacerbations.
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