Neonatal environment exerts a sustained influence on the development of the intestinal microbiota and metabolic

Claire A Merrifield1, Marie C Lewis2,3, Bernard Berger4

  • 1Biomolecular Medicine, Department of Surgery and Cancer, Imperial College London, London, UK.

The ISME Journal
|June 13, 2015
PubMed

Insights

Early-life environment significantly impacts gut microbiota and metabolic health in piglets, offering potential for infant interventions. This early influence on the gut microbiome and metabolism highlights critical developmental windows.

Area of Science:

  • Microbiology
  • Metabolomics
  • Developmental Biology

Background:

  • Postnatal environment, including gut microbiota acquisition, is linked to immunological and metabolic disorders.
  • Early-life factors can influence long-term health outcomes, including disease predisposition.

Purpose of the Study:

  • To investigate the impact of the very early-life environment on gut microbiota and host metabolic phenotype development in a porcine model.
  • To determine if early environmental variations affect metabolic profiles and microbial composition beyond weaning.

Main Methods:

  • Utilized a porcine model, controlling early-life environmental exposure in two batches with minor first-day differences.
  • Performed serum and urinary metabolic profiling using (1)H nuclear magnetic resonance spectroscopy.
  • Analyzed colonic microbiota composition via 16 S pyrosequencing at 35 days post-birth.

Main Results:

  • Significant systemic metabolic variations were observed between batches from day 1, persisting until weaning.
  • Urinary metabolic profiles showed persistent inter-batch effects on specific metabolites (3-hydroxyisovalerate, trimethylamine-N-oxide, mannitol) beyond weaning.
  • Batch effects correlated with significant differences in colonic microbiota composition at 35 days.

Conclusions:

  • The environment during the first day of life profoundly influences gut microbiota development and host metabolic phenotype.
  • Persistent metabolic and microbial alterations suggest a critical early-life programming window.
  • Early-life interventions targeting initial gut colonization may offer 'metabolic rescue' for at-risk infants.

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