Low gut microbiota diversity in early infancy precedes asthma at school age

T R Abrahamsson1, H E Jakobsson, A F Andersson

  • 1Division of Pediatrics, Department of Clinical and Experimental Medicine, Linköping University, Linköping, Sweden.

Insights

Early life gut microbiota diversity is linked to childhood asthma. Lower microbial diversity in the first month of life was associated with asthma development by age seven, highlighting the importance of infant gut colonization.

Area of Science:

  • Microbiome research
  • Pediatric allergy
  • Gut health and immunity

Background:

  • Infant gut microbiota diversity is linked to early-life allergies.
  • The relationship between early microbial diversity and later school-age allergic diseases remains unclear.

Purpose of the Study:

  • To investigate the association between gut microbial diversity in the first year of life and the prevalence of asthma, allergic rhinoconjunctivitis (ARC), and eczema at school age.
  • To characterize dominant gut bacteria in infants in relation to allergic disease development.

Main Methods:

  • 16S rDNA pyrosequencing of stool samples from 47 infants at 1 week, 1 month, and 12 months of age.
  • Assessment of allergic diseases and skin prick test reactivity in the same children at 7 years of age.
  • Correlation analysis between microbial diversity/composition and allergic outcomes.

Main Results:

  • Lower gut microbiota diversity at 1 week and 1 month of age was significantly associated with the development of asthma by age 7.
  • No significant association was found between early gut microbial diversity and allergic rhinoconjunctivitis, eczema, or skin prick test reactivity at age 7.
  • Asthma development was not associated with gut microbiota composition at 12 months of age.
  • Infants with IgE-associated eczema who later developed asthma exhibited lower microbial diversity.

Conclusions:

  • Reduced gut microbial diversity within the first month of life is a potential predictor of childhood asthma.
  • Interventions targeting infant gut microbial colonization in the first month may influence asthma risk.
  • Further research is needed to understand the specific mechanisms linking early gut microbiota to asthma development.
Abstract

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