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Decoding Susceptibility to Respiratory Viral Infections and Asthma Inception in Children
James F Read1,2, Anthony Bosco1
1Telethon Kids Institute, University of Western Australia, Nedlands, WA 6009, Australia.
Insights
Human Rhinovirus and Respiratory Syncytial Virus infections in children can lead to asthma. Systems biology reveals distinct immune responses (IRF7hi/lo) and genetic links, suggesting early life interventions for prevention.
Area of Science:
- Immunology
- Systems Biology
- Pediatric Respiratory Medicine
Background:
- Human Rhinovirus (HRV) and Respiratory Syncytial Virus (RSV) are leading causes of respiratory infections in children, triggering bronchiolitis, wheezing, and asthma exacerbations.
- Understanding the molecular basis of infection susceptibility and subsequent asthma development is crucial for effective prevention and treatment strategies.
Purpose of the Study:
- To apply systems biology approaches to elucidate the molecular mechanisms underlying respiratory virus infection risk and asthma development in children.
- To identify distinct immunological phenotypes associated with severe respiratory infections and asthma exacerbations.
Main Methods:
- Utilized systems biology tools to analyze molecular mechanisms of infection and asthma.
- Conducted molecular profiling studies in children with severe asthma/wheeze and viral bronchiolitis.
- Performed genome-wide association studies (GWAS) and experimental validation to identify genetic risk factors.
Main Results:
- Identified two major immunological phenotypes: IRF7hi (antiviral response) and IRF7lo (TGFβ signaling/type 2 inflammation).
- Discovered genetic pathways (ORMDL3, CHDR3, GSDMB, TGFBR1, SMAD3) influencing HRV susceptibility and TGFβ signaling.
- Observed deficiencies in type I/III interferon responses at birth in infants at risk for respiratory infections and asthma.
Conclusions:
- The trajectory towards asthma may begin at birth or in utero, indicated by impaired early interferon responses.
- Microbial exposures can reprogram innate immunity, offering protection against allergies and asthma.
- Microbial products represent promising candidates for the primary prevention of asthma in children.
Abstract:
Human Respiratory Syncytial Virus and Human Rhinovirus are the most frequent cause of respiratory tract infections in infants and children and are major triggers of acute viral bronchiolitis, wheezing and asthma exacerbations. Here, we will discuss the application of the powerful tools of systems biology to decode the molecular mechanisms that determine risk for infection and subsequent asthma. An important conceptual advance is the understanding that the innate immune system is governed by a Bow-tie architecture, where diverse input signals converge onto a few core pathways (e.g., IRF7), which in turn generate diverse outputs that orchestrate effector and regulatory functions. Molecular profiling studies in children with severe exacerbations of asthma/wheeze have identified two major immunological phenotypes. The IRF7hi phenotype is characterised by robust upregulation of antiviral response networks, and the IRF7lo phenotype is characterised by upregulation of markers of TGFβ signalling and type 2 inflammation. Similar phenotypes have been identified in infants and children with severe viral bronchiolitis. Notably, genome-wide association studies supported by experimental validation have identified key pathways that increase susceptibility to HRV infection (ORMDL3 and CHDR3) and modulate TGFβ signalling (GSDMB, TGFBR1, and SMAD3). Moreover, functional deficiencies in the activation of type I and III interferon responses are already evident at birth in children at risk of developing febrile lower respiratory tract infections and persistent asthma/wheeze, suggesting that the trajectory to asthma begins at birth or in utero. Finally, exposure to microbes and their products reprograms innate immunity and provides protection from the development of allergies and asthma in children, and therefore microbial products are logical candidates for the primary prevention of asthma.
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