Three clinically distinct chronic pediatric airway infections share a common core microbiota

Christopher J van der Gast1, Leah Cuthbertson, Geraint B Rogers

  • 11 Natural Environment Research Council Centre for Ecology & Hydrology, Wallingford, United Kingdom.

Abstract

Insights

Children with chronic lung infections share similar airway microbiota, which diverge in adults. This suggests early life factors shape the lung microbiome, with disease-specific changes occurring later.

Area of Science:

  • Microbiology
  • Pulmonary Medicine
  • Genomics

Background:

  • Investigating the human microbiota in infectious diseases, particularly chronic respiratory conditions like cystic fibrosis (CF) and non-CF bronchiectasis, is an evolving area of research.
  • Understanding the core (common/abundant) versus satellite (infrequent/rare) microbiota is crucial for disease pathogenesis and therapeutic strategies.
  • Limited research exists on whether the core microbiota in different chronic respiratory diseases are shared or unique, and how they change from childhood to adulthood.

Purpose of the Study:

  • To compare the core respiratory microbiota in children and adults across various chronic lung infections.
  • To investigate potential differences and similarities in the airway microbiome between pediatric and adult patients with distinct airway diseases.

Main Methods:

  • Bacterial 16S rRNA gene pyrosequencing was employed to analyze respiratory samples.
  • Phylogenetic and ecological statistical tools were used for comparative analysis of core microbiota.
  • Samples were analyzed from three pediatric cohorts (protracted bacterial bronchitis, bronchiectasis, CF), healthy children, and adult bronchiectasis and CF patients.

Main Results:

  • Pediatric cohorts with distinct airway diseases exhibited highly similar core respiratory microbiota.
  • These pediatric microbiota profiles were also found in healthy children, differing significantly from adult CF and bronchiectasis microbiota.
  • Adult CF and bronchiectasis microbiota showed distinct profiles, indicating divergence from a common early airway microbiome into adulthood.

Conclusions:

  • Clinically distinct chronic airway infections share a common early core microbiota, likely influenced by aspiration and impaired clearance.
  • Disease-specific factors lead to the divergence of airway microbiota by adulthood.
  • Further longitudinal and interventional studies are necessary to elucidate the interplay between microbiota, treatments, and disease progression.

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