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Rapid Gut Adaptation to Preterm Birth Involves Feeding-Related DNA Methylation Reprogramming of Intestinal Genes in
Xiaoyu Pan1, Thomas Thymann1, Fei Gao1,2
1Comparative Pediatrics and Nutrition, Department of Veterinary and Animal Sciences, Faculty of Health and Medical Sciences, University of Copenhagen, Copenhagen, Denmark.
Insights
Preterm birth causes intestinal epigenetic changes, but the immature gut adapts remarkably. Early enteral feeding may be crucial for reprogramming intestinal genes and promoting adaptation after preterm birth.
Area of Science:
- Gastroenterology and Developmental Biology
- Epigenetics and Gut Health
- Neonatal Physiology
Background:
- Preterm birth necessitates rapid gut adaptation to feeding and microbial colonization.
- Intestinal epigenetic modifications are hypothesized to play a role in this adaptation process.
- Piglets serve as a relevant model for studying infant gut development post-preterm birth.
Purpose of the Study:
- To investigate intestinal epigenetic changes in response to preterm birth and initial feeding.
- To compare the gut structure, function, microbiome, and epigenome between preterm and term pigs.
- To determine the long-term effects of early feeding strategies on gut adaptation.
Main Methods:
- Comparison of intestinal structure, function, microbiome, DNA methylome, and gene expression in preterm and term piglets.
- Feeding protocols included total parenteral nutrition (TPN) and partial/exclusive enteral feeding.
- Analyses were conducted at birth (day 0), day 5, and day 26 (weaning age).
Main Results:
- Preterm pigs exhibited villus atrophy and global hypermethylation at birth, impacting Wnt signaling.
- Early epigenetic differences, particularly in Toll-like receptor 4 pathways, diminished by day 26.
- Reduced brush border enzyme activity and altered gut microbiota persisted in preterm pigs until weaning.
- Enteral feeding, especially in the absence of TPN, induced new methylation differences affecting cell metabolism genes like GCK.
Conclusions:
- The immature intestine demonstrates significant capacity for epigenetic and gene expression adaptation post-preterm birth.
- Most early methylation differences resolve by weaning, indicating remarkable adaptive potential.
- Early enteral nutrition appears vital for stimulating gene methylation reprogramming and facilitating intestinal adaptation in preterm neonates.
Abstract:
Following preterm birth, the immature gut function and immunology must rapidly adapt to cope with bacterial colonization and enteral milk feeding. We hypothesized that intestinal epigenetic changes are involved in the gut response to preterm birth and the first feeding. Using piglets as models for infants, preterm, and term pigs were fed total parenteral nutrition (TPN) or partial enteral feeding for 5 days, followed by exclusive enteral feeding with bovine milk until day 26 (weaning age). Intestinal structure, function, microbiome, DNA methylome, and gene expressions were compared between preterm and term pigs on days 0, 5, and 26 (n = 8 in each group). At birth, the intestine of preterm pigs showed villus atrophy and global hypermethylation, affecting genes related to the Wnt signaling pathway. Hypermethylation-associated lowered expression of lipopolysaccharide-binding protein and genes related to the Toll-like receptor 4 pathway were evident during the first 5 days of life, but most early methylation differences disappeared by day 26. Regardless, sucrase and maltase activities (adult-type brush border enzymes) remained reduced, and the gut microbiota altered (fewer Akkermansia, more Lachnoclostridia and Lactobacilli) until day 26 in preterm pigs. During the 0- to 5-day period, many new preterm-term methylation differences appeared, but mainly when no enteral feed was provided (TPN feeding). These methylation differences affected intestinal genes related to cell metabolism, including increased GCK (glucokinase) expression via promoter hypomethylation. In conclusion, the immature intestine has a remarkable capacity to adapt its gene methylation and expression after preterm birth, and only few preterm-related defects persisted until weaning. Early enteral feeding may be important to stimulate the methylation reprogramming of intestinal genes, allowing rapid intestinal adaptation to preterm birth.
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