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Published on: August 7, 2017
Neonatal gut colonization by Bifidobacterium is associated with higher childhood cytokine responses
Hardis Rabe1, Anna-Carin Lundell2, Fei Sjöberg1
1Institute of Biomedicine, Department of Infectious Diseases, The Sahlgrenska Academy at the University of Gothenburg, Gothenburg, Sweden.
Insights
Early gut bacteria colonization influences infant immune system development. Bifidobacterium colonization in infants is linked to enhanced T cell maturation and cytokine production later in childhood.
Area of Science:
- Immunology
- Microbiology
- Pediatrics
Background:
- The gut microbiota is crucial for immune system development.
- The impact of early gut bacterial colonization patterns on infant T cell activation remains unclear.
Purpose of the Study:
- To investigate the relationship between infant gut bacterial colonization and T cell activation.
- To determine if specific bacterial colonization patterns influence immune maturation.
Main Methods:
- Fecal samples from 65 infants (FARMFLORA cohort) were analyzed using 16S rRNA sequencing and culture-based methods.
- Cytokine production (IL-13, IL-5, IL-6, TNF, IL-1β, IFN-γ) and CD4+ T cell proportions (CD45RO+) were measured at 36 months.
- Colonization patterns in the first year of life were correlated with immune markers at 3 years.
Main Results:
- Bifidobacterium colonization at 1 week was associated with higher IL-5, IL-6, IL-13, TNF, and IL-1β production at 36 months.
- Colonization by Enterococcus, Staphylococcus aureus, or Clostridium was inversely related to IL-13, IL-5, and TNF production.
- Infants with older siblings showed increased cytokine production and CD45RO+ T cells, but Bifidobacterium's effect persisted after controlling for this.
Conclusions:
- Early gut colonization significantly impacts T cell maturation in infants.
- Bifidobacterium colonization appears particularly important in promoting infantile immune maturation.
Abstract:
The gut microbiota is a major stimulus for the immune system, and late acquisition of bacteria and/or reduced complexity of the gut flora may delay adaptive immune maturation. However, it is unknown how the gut bacterial colonization pattern in human infants is related to T cell activation during early childhood. We followed 65 Swedish children in the FARMFLORA cohort, from birth up to 3 years of age. In fecal samples collected at several time points during the first year of life, the gut colonization pattern was investigated with the use of both 16S rRNA next generation sequencing (NGS) and culture-based techniques. This was related to production of IL-13, IL-5, IL-6, TNF, IL-1β and IFN-γ by PHA-stimulated fresh mononuclear cells and to proportions of CD4+ T cells that expressed CD45RO at 36 months of age. Both NGS and culture-based techniques showed that colonization by Bifidobacterium at 1 week of age associated with higher production of IL-5, IL-6, IL-13, TNF and IL-1β at 36 months of age. By contrast, gut colonization by Enterococcus, Staphylococcus aureus or Clostridium in early infancy related inversely to induced IL-13, IL-5 and TNF at 3 years of age. Infants with elder siblings produced more cytokines and had a larger fraction of CD45RO+ T cells compared to single children. However, controlling for these factors did not abolish the effect of colonization by Bifidobacterium on immune maturation. Thus, gut colonization in early infancy affects T cell maturation and Bifidobacterium may be especially prone to induce infantile immune maturation.
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