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Updated: Feb 3, 2026

A Gut-on-a-Chip Model to Study the Gut Microbiome-Nervous System Axis
Published on: July 28, 2023
Temporal development of the gut microbiome in early childhood from the TEDDY study
Christopher J Stewart1,2, Nadim J Ajami3, Jacqueline L O'Brien3
1Alkek Center for Metagenomics and Microbiome Research, Department of Molecular Virology and Microbiology, Baylor College of Medicine, Houston, TX, USA. christopher.stewart@ncl.ac.uk.
Insights
The early life gut microbiome develops in three phases, influenced by breastfeeding and birth mode. These factors impact microbial composition, potentially affecting long-term health and disease risk.
Area of Science:
- Human Microbiome Research
- Pediatric Health
- Immunology
Background:
- The early life microbiome is crucial for immune system development and may influence later-life diseases like type 1 diabetes.
- Previous studies lacked extensive characterization of the infant microbiome in large, multi-center populations.
Purpose of the Study:
- To extensively characterize the developing gut microbiome in a large cohort of infants.
- To identify key factors influencing microbiome structure and progression in early life.
- To explore subtle associations between early life microbes and the development of islet autoimmunity or type 1 diabetes.
Main Methods:
- Longitudinal analysis of stool samples from 903 children (3-46 months) using 16S rRNA and metagenomic sequencing.
- Utilized data from The Environmental Determinants of Diabetes in the Young (TEDDY) study.
- Employed nested case-control analysis to link microbial taxonomy with disease development.
Main Results:
- Identified three distinct microbiome phases: developmental (3-14 months), transitional (15-30 months), and stable (31-46 months).
- Breast milk receipt was the strongest factor, with breastfeeding promoting Bifidobacterium and cessation accelerating maturation (Firmicutes).
- Vaginal birth was associated with higher Bacteroides levels during the developmental phase, linked to increased diversity and faster maturation.
Conclusions:
- Early life gut microbiome assembly is structured into distinct phases influenced by feeding and birth mode.
- Environmental factors and early life microbial composition may play subtle roles in islet autoimmunity and type 1 diabetes development.
- Provides a foundation for investigating microbial-immune interactions in early life for long-term health outcomes.
Abstract:
The development of the microbiome from infancy to childhood is dependent on a range of factors, with microbial-immune crosstalk during this time thought to be involved in the pathobiology of later life diseases1-9 such as persistent islet autoimmunity and type 1 diabetes10-12. However, to our knowledge, no studies have performed extensive characterization of the microbiome in early life in a large, multi-centre population. Here we analyse longitudinal stool samples from 903 children between 3 and 46 months of age by 16S rRNA gene sequencing (n = 12,005) and metagenomic sequencing (n = 10,867), as part of the The Environmental Determinants of Diabetes in the Young (TEDDY) study. We show that the developing gut microbiome undergoes three distinct phases of microbiome progression: a developmental phase (months 3-14), a transitional phase (months 15-30), and a stable phase (months 31-46). Receipt of breast milk, either exclusive or partial, was the most significant factor associated with the microbiome structure. Breastfeeding was associated with higher levels of Bifidobacterium species (B. breve and B. bifidum), and the cessation of breast milk resulted in faster maturation of the gut microbiome, as marked by the phylum Firmicutes. Birth mode was also significantly associated with the microbiome during the developmental phase, driven by higher levels of Bacteroides species (particularly B. fragilis) in infants delivered vaginally. Bacteroides was also associated with increased gut diversity and faster maturation, regardless of the birth mode. Environmental factors including geographical location and household exposures (such as siblings and furry pets) also represented important covariates. A nested case-control analysis revealed subtle associations between microbial taxonomy and the development of islet autoimmunity or type 1 diabetes. These data determine the structural and functional assembly of the microbiome in early life and provide a foundation for targeted mechanistic investigation into the consequences of microbial-immune crosstalk for long-term health.
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