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Altered fecal microbiota composition associated with food allergy in infants
Zongxin Ling1, Zailing Li, Xia Liu
1State Key Laboratory for Diagnosis and Treatment of Infectious Diseases, the First Affiliated Hospital, School of Medicine, Zhejiang University, Hangzhou, Zhejiang, China.
Insights
Infant gut microbiota alterations, particularly specific bacterial phylotypes, are linked to food allergy (FA) development. These changes, not overall diversity, may play a pathogenic role in FA.
Area of Science:
- Microbiology
- Immunology
- Pediatrics
Background:
- Infant gut microbiota dysbiosis is increasingly linked to food allergy (FA) pathogenesis.
- The precise microbial composition in infants with FA requires further elucidation.
Purpose of the Study:
- To analyze the fecal microbiota structure and composition in infants with FA.
- To identify specific bacterial phylotypes associated with FA and differentiate between IgE-mediated and non-IgE-mediated FA.
Main Methods:
- 16S rRNA gene pyrosequencing of fecal samples from 34 infants with FA and 45 healthy controls.
- Analysis of microbial diversity and composition at phylum, family, and genus levels.
- Correlation analysis between specific microbial taxa and immune markers (interleukin-10, serum IgE).
Main Results:
- Reduced proportions of Bacteroidetes, Proteobacteria, and Actinobacteria; enriched Firmicutes in infants with FA.
- Prevalence of Clostridiaceae 1 at the family level and specific genera (Enterococcus, Staphylococcus) negatively correlated with interleukin-10.
- Distinct microbiota signatures identified, differentiating IgE-mediated FA (increased Clostridium sensu stricto, Anaerobacter; decreased Bacteroides, Clostridium XVIII) from non-IgE-mediated FA.
- Positive correlation between Clostridium sensu stricto and serum-specific IgE.
Conclusions:
- Specific alterations in infant fecal microbiota, rather than overall diversity, are associated with FA.
- Certain bacterial phylotypes and dysbiosis patterns may contribute to FA pathogenesis.
- Microbiota signatures can distinguish between IgE-mediated and non-IgE-mediated FA in infants.
Abstract:
Increasing evidence suggests that perturbations in the intestinal microbiota composition of infants are implicated in the pathogenesis of food allergy (FA), while the actual structure and composition of the intestinal microbiota in human beings with FA remain unclear. Microbial diversity and composition were analyzed with parallel barcoded 454 pyrosequencing targeting the 16S rRNA gene hypervariable V1-V3 regions in the feces of 34 infants with FA (17 IgE mediated and 17 non-IgE mediated) and 45 healthy controls. Here, we showed that several key FA-associated bacterial phylotypes, but not the overall microbiota diversity, significantly changed in infancy fecal microbiota with FA and were associated with the development of FA. The proportion of abundant Bacteroidetes, Proteobacteria, and Actinobacteria phyla were significantly reduced, while the Firmicutes phylum was highly enriched in the FA group (P < 0.05). Abundant Clostridiaceae 1 organisms were prevalent in infants with FA at the family level (P = 0.016). FA-enriched phylotypes negatively correlated with interleukin-10, for example, the genera Enterococcus and Staphylococcus. Despite profound interindividual variability, levels of 20 predominant genera were significantly different between the FA and healthy control groups (P < 0.05). Infants with IgE-mediated FA had increased levels of Clostridium sensu stricto and Anaerobacter and decreased levels of Bacteroides and Clostridium XVIII (P < 0.05). A positive correlation was observed between Clostridium sensu stricto and serum-specific IgE (R = 0.655, P < 0.001). The specific microbiota signature could distinguish infants with IgE-mediated FA from non-IgE-mediated ones. Detailed microbiota analysis of a well-characterized cohort of infants with FA showed that dysbiosis of fecal microbiota with several FA-associated key phylotypes may play a pathogenic role in FA.
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