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Updated: Sep 2, 2025

A Method for Targeted 16S Sequencing of Human Milk Samples
Published on: March 23, 2018
Gut microbial influences on the adaptive immune system and the development of cow milk allergy
Tracy Augustine1, Fariada Badri1, Selvasankar Murugesan2
1Laboratory of Immunoregulation, Sidra Medicine, Doha, Qatar
Insights
Pediatric cow milk protein allergy (CMPA) is linked to gut microbiome changes and altered T cell responses. Understanding this connection may reveal how gut bacteria influence CMPA development in children.
Area of Science:
- Immunology
- Microbiology
- Pediatrics
Background:
- Food allergies, particularly cow milk protein allergy (CMPA) in children, are increasing globally.
- CMPA can be IgE-mediated or non-IgE mediated, involving imbalances in type-2 helper T (Th2) cells and regulatory T cells (Tregs).
- The early-life gut microbiota plays a role in the development of allergic diseases.
Purpose of the Study:
- To investigate the association between gut microbiome composition and CD4+ T cell differentiation patterns in pediatric patients with and without CMPA.
- To identify specific microbial species linked to IgE-mediated and non-IgE mediated CMPA.
- To explore how the gut microbiome influences immune T cell development in the context of CMPA.
Main Methods:
- 16S rRNA sequencing of stool samples from children aged 1-4 years with and without CMPA.
- Flow cytometry analysis of CD4+ T cell subsets after re-stimulation with cow milk antigen.
- High-throughput sequencing and gene expression analysis of sorted antigen-specific CD4+ T cells.
Main Results:
- Analysis of microbiome composition in allergic and non-allergic pediatric patients.
- Identification of abundant microbial species in IgE and non-IgE mediated CMPA.
- Assessment of CD4+ T cell differentiation patterns and comparison with controls.
Conclusions:
- The study aims to correlate CD4+ T cell differentiation with specific microbial abundance in CMPA subtypes.
- Findings may elucidate the role of the gut microbiome in pediatric CMPA development.
- This research could inform future strategies for managing and preventing CMPA.
Abstract:
Allergic diseases constitute significant health and economic issues in both developed and developing nations, with epidemiological studies demonstrating a rapid increase in the global prevalence of food allergy among the pediatric population. Cow milk protein allergy (CMPA), one of the most common forms of food allergies observed in early childhood, affects between 2%-6% of infants and children under 3 years of age. CMPA can present as either an IgE-mediated atopic allergy or a non-IgE mediated allergic response. Antigen-specific T cells play a pivotal role in directing the type of inflammatory immune response that occurs as well as in the formation of immunological memory. IgE-mediated CMPA is thought to develop because of an abnormal expansion of allergen-specific type-2 helper T (Th2) cells and a corresponding deficiency in immune regulation by regulatory T cells (Tregs), thereby altering the Th2/Treg balance. The gut microbiota, established very early during childhood through host-microbe interactions, can influence the incidence of allergic diseases. In this study, we aimed to analyze both the microbiome composition and CD4+T cell differentiation patterns in pediatric patients with and without cow milk allergy to establish the association between these factors. Using 16S rRNA sequencing, we analyzed the microbiome composition in stool samples of allergic and non-allergic pediatric patients aged between 1-4 years and identified the microbial species abundant in IgE and non-IgE mediated cow milk allergies. To assess the CD4+T cell differentiation patterns, peripheral blood mononuclear cells (PBMCs) from these patients were re-stimulated with cow milk antigen, and T cell subsets were assessed using flow cytometry. Antigen-specific CD4+T cells were identified and sorted for high throughput sequencing and subsequent gene expression analysis. The CD4+T cell differentiation patterns of the total and antigen-specific T cells were analyzed and statistically compared with controls. The identification of the correlation between the CD4+T cell differentiation patterns and species-specific microbial abundance in IgE and non-IgE mediated cow milk allergies can help in determining how the gut microbiome influences the CD4+T cell immune compartment development, ultimately leading to the development of cow milk allergy in pediatric patients.
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