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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
Epigenome-Microbiome crosstalk: A potential new paradigm influencing neonatal susceptibility to disease
Rene Cortese1, Lei Lu1, Yueyue Yu1
1a Section of Neonatology, Department of Pediatrics, The University of Chicago , Chicago , IL , USA.
Insights
Epigenetic changes in premature infants can influence gut bacteria, potentially leading to necrotizing enterocolitis (NEC). Understanding this gut microbiome-epigenome interaction is key to preventing this serious infant condition.
Area of Science:
- Neonatology
- Microbiology
- Epigenetics
Background:
- Preterm birth is a major cause of infant mortality.
- Necrotizing enterocolitis (NEC) is a severe intestinal disease in premature infants.
- Gut microbial colonization may influence NEC development through epigenetic modifications.
Purpose of the Study:
- To investigate the crosstalk between host epigenome and early gut microbiota.
- To understand how intrauterine influences affect neonatal gut development and NEC susceptibility.
Main Methods:
- Exposing immature enterocytes to bacteria to identify DNA modification regions.
- Using a mouse model with prenatal dexamethasone exposure to study glucocorticoid effects on host epigenome.
- Analyzing gene expression profiles and DNA methylation.
- Performing 16S rRNA sequencing to analyze gut microbiota composition.
Main Results:
- Over 200 differential DNA modification regions were identified upon bacterial exposure.
- Antenatal glucocorticoid treatment altered the host epigenome.
- Epigenome changes influenced early microbiota colonization, leading to differential bacterial abundance.
- Gene expression analysis revealed effects on inflammatory and barrier genes.
Conclusions:
- A novel framework suggests intrauterine epigenetic changes impact early microbial colonization and gut development.
- This interaction may alter susceptibility to NEC and other infant diseases.
- Targeting epigenetic modifications could be a future strategy for NEC prevention.
Abstract:
Preterm birth is the leading cause of infant morbidity and mortality. Necrotizing enterocolitis (NEC) is an inflammatory bowel disease affecting primarily premature infants, which can be lethal. Microbial intestinal colonization may alter epigenetic signatures of the immature gut establishing inflammatory and barrier properties predisposing to the development of NEC. We hypothesize that a crosstalk exists between the epigenome of the host and the initial intestinal colonizing microbiota at critical neonatal stages. By exposing immature enterocytes to probiotic and pathogenic bacteria, we showed over 200 regions of differential DNA modification, which were specific for each exposure. Reciprocally, using a mouse model of prenatal exposure to dexamethasone we demonstrated that antenatal treatment with glucocorticoids alters the epigenome of the host. We investigated the effects on the expression profiles of genes associated with inflammatory responses and intestinal barrier by qPCR-based gene expression array and verified the DNA modification changes in 5 candidate genes by quantitative methylation specific PCR (qMSP). Importantly, by 16S RNA sequencing-based phylogenetic analysis of intestinal bacteria in mice at 2 weeks of life, we showed that epigenome changes conditioned early microbiota colonization leading to differential bacterial colonization at different taxonomic levels. Our findings support a novel conceptual framework in which epigenetic changes induced by intrauterine influences affect early microbial colonization and intestinal development, which may alter disease susceptibility.
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