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A Murine Model of Fetal Exposure to Maternal Inflammation to Study the Effects of Acute Chorioamnionitis on Newborn Intestinal Development
Published on: June 24, 2020
Neonatal antibiotic treatment alters gastrointestinal tract developmental gene expression and intestinal barrier
Alexandra Schumann1, Sophie Nutten, Dominique Donnicola
1Department of Nutrition and Health, Nestle Research Center, Vers-chez-les-Blanc, Lausanne, Switzerland.
Insights
Early antibiotic use in infant rats disrupts gut microbiota and impairs gut barrier development. This early-life antibiotic exposure significantly affects the maturation of the gut barrier, impacting immune responses.
Area of Science:
- Microbiology
- Immunology
- Developmental Biology
Background:
- Postnatal gut maturation establishes an effective barrier against antigens and bacteria.
- Broad-spectrum antibiotics can disrupt gut microbiota and potentially impair gut barrier development.
Purpose of the Study:
- To investigate the impact of early-life antibiotic treatment on gut microbiota and barrier function maturation in suckling rats.
Main Methods:
- Suckling rats were gavaged with antibiotics (Clamoxyl) or saline from postnatal day 7 to 17 or 21.
- Analysis of luminal microbiota composition and global gene expression in the small intestine and colon.
Main Results:
- Antibiotic treatment eradicated Lactobacillus and drastically reduced colonic bacteria, including Enterobacteriaceae and Enterococcus.
- Gene expression analysis revealed significant alterations in maturation pathways in the small intestine and colon.
- Downregulation of Paneth cell products and Major Histocompatibility Complex (MHC) class Ib and II genes; upregulation of mast cell proteases.
Conclusions:
- Early broad-spectrum antibiotic treatment profoundly affects gut barrier function during the critical suckling-weaning period.
- This disruption impacts the gut's ability to handle novel food-borne antigens and influences immune system development.
Abstract:
The postnatal maturation of the gut, partially modulated by bacterial colonization, ends up in the establishment of an efficient barrier to luminal antigens and bacteria. The use of broad-spectrum antibiotics in pediatric practices alters the gut bacterial colonization and, consequently, may impair the maturation of the gut barrier function. To test this hypothesis, suckling Sprague-Dawley rats received a daily intragastric gavage of antibiotic (Clamoxyl; an amoxicillin-based commercial preparation) or saline solution from postnatal day 7 (d7) until d17 or d21. Luminal microbiota composition and global gene expression profile were analyzed on samples from small intestine and colon of each group. The treatment with Clamoxyl resulted in the almost-complete eradication of Lactobacillus in the whole intestine and in a drastic reduction of colonic total aerobic and anaerobic bacteria, in particular Enterobacteriacae and Enterococcus. The global gene expression analysis revealed that Clamoxyl affects the maturation process of 249 and 149 Affymetrix probe sets in the proximal and distal small intestine, respectively, and 163 probe sets in the colon. The expression of genes coding for Paneth cell products (defensins, matrilysin, and phospholipase A2) was significantly downregulated by the Clamoxyl treatment. A significant downregulation of major histocompatibility complex (MHC) class Ib and II genes, involved in antigen presentation, was also observed. Conversely, mast cell proteases expression was upregulated. These results suggest that early treatment with a large-spectrum antibiotic deeply affects the gut barrier function at the suckling-weaning interface, a period during which the gut is challenged by an array of novel food-borne antigens.
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