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Dynamic Interactions between the Gut Microbiome, Health, and Metabolic Disorders in Preterm Infants
Ki Beom Jang1, Eunsol Seo1, Younghoon Kim1
1Department of Agricultural Biotechnology and Research Institute of Agriculture and Life Science, Seoul National University, Seoul 08826, Republic of Korea.
Insights
Preterm birth disrupts infant gut microbiota, increasing risks for infections and developmental issues. Restoring microbial balance is key to improving preterm infant health and long-term outcomes.
Area of Science:
- Neonatal Health
- Microbiology
- Developmental Pediatrics
Background:
- Preterm birth significantly impacts infant gastrointestinal development, leading to impaired nutrient absorption and immune function.
- Abnormal intestinal microbiota development (gut dysbiosis) in preterm neonates is linked to increased vulnerability to infections and inflammatory conditions.
- This dysbiosis contributes to serious complications such as necrotizing enterocolitis and sepsis, and may have long-term effects on metabolic and neurodevelopmental health.
Purpose of the Study:
- To review current research on the effects of premature birth on infant gut development and microbial colonization.
- To explore the role of gut microbiota in shaping the neonatal immune system and brain development.
- To discuss potential interventions like specialized nutrition and probiotics for improving microbial balance in preterm infants.
Main Methods:
- Literature review synthesizing current research findings.
- Analysis of studies focusing on microbial colonization in preterm infants.
- Integration of evidence on host-microbe interactions and their impact on neonatal health.
Main Results:
- Preterm birth is associated with reduced gut microbial diversity and altered bacterial composition.
- Gut dysbiosis in preterm infants increases the risk of necrotizing enterocolitis, sepsis, and long-term neurodevelopmental and metabolic disorders.
- Commensal microbes and their metabolites are crucial for promoting intestinal maturation, immune homeostasis, and gut-brain signaling.
Conclusions:
- Preterm birth profoundly affects intestinal development and microbial colonization, predisposing infants to dysbiosis and associated diseases.
- Understanding the gut-brain axis and host-microbe interactions is vital for improving preterm infant health.
- Precision approaches, including microbial profiling and targeted nutrition, are essential for advancing neonatal care and enhancing outcomes for preterm infants.
Abstract:
Preterm birth, which occurs before the entire gestation is completed, causes serious health challenges for newborns. The gastrointestinal tract often shows delayed development and poor function in nutrient utilization and immune response. Preterm neonates are faced with difficulties in growth, are more vulnerable to infections, and have a higher risk of developing inflammatory diseases. One key factor in these outcomes is the abnormal development of intestinal microbiota. In premature neonates, gut microbes tend to show lower diversity and changes in several bacteria. The gut dysbiosis can disrupt gut function and contribute to complications like necrotizing enterocolitis, sepsis, and even long-term metabolic and neurodevelopmental disorders. This review brings together current research on how premature birth affects the growth, gut development, and overall health of infants, with a focus on changes in microbial colonization. In addition, we discuss how gut microbiota plays a role in shaping the immune system and influencing brain development. There is growing interest in using breast milk, specialized nutrition, and probiotics to improve microbial balance in premature infants. Preterm birth alters intestinal development and microbial colonization, making infants vulnerable to gut dysbiosis and disease. These changes contribute to a heightened risk of neonatal diseases such as NEC, sepsis, and long-term neurodevelopmental and metabolic disorders. Evidence highlights the critical role of commensal microbes and their metabolites in promoting epithelial maturation, immune balance, and gut-brain signaling. Advancing neonatal care will require precision approaches based on microbial profiling, targeted nutritional strategies, and a deeper understanding of host-microbe interactions to improve health in preterm infants. Therefore, this review focuses on integrating recent evidence of microbial development and preterm infant health, highlighting the gut-brain axis in relation to metabolic disorders, and emphasizing how gut dysbiosis links clinical outcomes with mechanistic insights in neonatal care.
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