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Published on: August 7, 2017
Strain-Level microbial signatures and inferred functional alterations in infants with Food Protein-Induced Allergic
Chen Goldstein1, Itamar Lavy1, Timothy Sun1
1The Hebrew University of Jerusalem.
Insights
Infants with allergic proctocolitis (AP) have distinct gut microbes, including specific E. coli strains, even before symptoms appear. These findings offer early biomarkers and targets for preventing food allergies.
Area of Science:
- * Pediatric allergy and immunology
- * Microbiome research
- * Gastroenterology
Background:
- * Rising rates of pediatric allergic diseases linked to infant gut microbiome and immune development.
- * Food protein-induced allergic proctocolitis (AP) is an early non-IgE-mediated food allergy model.
- * Limited understanding of microbial roles in AP development.
Purpose of the Study:
- * Investigate microbial composition and functional pathways in infants with AP.
- * Identify early microbial biomarkers for AP.
- * Explore strain-level differences in the infant gut microbiome.
Main Methods:
- * Comparative analysis of gut microbial compositions in infants with and without AP.
- * Strain-level microbiome profiling.
- * Analysis of functional pathways, including short-chain fatty acid (SCFA) production.
Main Results:
- * Infants with AP showed distinct microbial profiles, with enriched *Escherichia coli* and *Bifidobacterium bifidum*.
- * Protective species like *Bifidobacterium breve* were more abundant in unaffected infants.
- * Specific *Lacticaseibacillus rhamnosus* strains were associated with probiotic use and AP; *E. coli* strains in AP had enriched genes for biofilm formation.
Conclusions:
- * Disease-associated microbial signatures, including strain-level variations, are detectable before AP symptoms.
- * Findings provide a foundation for identifying early microbial biomarkers and therapeutic targets for AP.
- * Advances understanding of non-IgE-mediated food allergies and informs prevention strategies for IgE-mediated allergies.
Abstract:
The complex relationship between the gut microbiome and immune system development during infancy is thought to be a key factor in the rising rates of pediatric allergic diseases. Food protein-induced allergic proctocolitis (AP), the earliest identified form of non-IgE-mediated food allergy in infants, occurs at the mucosal surface where dietary proteins, intestinal microbes, and immune cells directly interact, and increases the risk for life threatening IgE-mediated food allergy, making it an important model for understanding early food allergic disease development. The question of how specific microbial compositions and functional pathways contribute to AP development and progression remains poorly understood. Here we show that infants with AP exhibit microbial compositions that differ from unaffected controls, characterized by enrichment of Escherichia coli and Bifidobacterium bifidum during early life, including pre-symptomatic stages, while protective species like Bifidobacterium breve and Klebsiella species are more abundant in unaffected controls. Strain-level analyses uncovered additional disease-linked patterns, particularly Lacticaseibacillus rhamnosus strains showed strong association with probiotic use and predominantly found in infants with AP. These findings reveal disease-associated microbial signatures that can sometimes be detectable before clinical symptoms emerge, and demonstrate that strain-level differences within E. coli populations may represent AP-specific lineages with distinct gene content profiles that were not previously recognized. Genes for biofilm formation and cell adhesion in E. coli, for example, were particularly enriched in AP-associated clades. Short chain fatty acid (SCFA) and other functional pathways were also associated with AP, including reduced SCFA production during the symptomatic phase, and then a potentially compensatory increased production following AP resolution. Our results provide the first comprehensive strain-level characterization of the gut microbiome in AP, and functional implications, and establish a foundation for future efforts to identify early microbial biomarkers and potential interventional targets for AP. This work advances our understanding of how specific microbial taxa and functional pathways may contribute to non-IgE-mediated food allergies and opens new avenues for microbiome-targeted therapeutic approaches as well as novel prevention targets for IgE-mediated food allergies.
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