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Published on: November 15, 2019
Highly Specialized Carbohydrate Metabolism Capability in Bifidobacterium Strains Associated with Intestinal Barrier
Bing Ma1,2, Sripriya Sundararajan3, Gita Nadimpalli4
1Institute for Genome Sciences, University of Maryland School of Medicine, Baltimore, Maryland, USA.
Insights
High intestinal barrier permeability, or "leaky gut," in preterm infants is linked to Bifidobacterium breve and breast milk. These factors promote gut maturation, potentially preventing necrotizing enterocolitis (NEC).
Area of Science:
- Neonatal microbiome research
- Gastrointestinal health
- Microbial genomics
Background:
- High intestinal barrier permeability ("leaky gut") is prevalent in preterm newborns, increasing susceptibility to necrotizing enterocolitis (NEC).
- The role of the gut microbiota in the development of intestinal barrier function in preterm infants is not well understood.
- Understanding these interactions is crucial for developing interventions against NEC, a major cause of neonatal morbidity and mortality.
Purpose of the Study:
- To characterize the intestinal microbiome of preterm infants and identify factors associated with intestinal barrier maturation.
- To elucidate the mechanistic roles of breast milk and specific microbial species in promoting gut barrier development.
- To provide insights for novel therapeutic strategies to prevent leaky gut and NEC in vulnerable neonates.
Main Methods:
- Longitudinal cohort study of 113 preterm infants (24-32 weeks gestation).
- Short- and long-read 16S rRNA gene and whole-genome shotgun metagenomic sequencing.
- Analysis of microbial composition, functional potential, and association with feeding (breast milk) and intestinal barrier maturation.
Main Results:
- Increased abundance of *Bifidobacterium breve* and high breast milk intake were associated with improved intestinal barrier function in the first week of life.
- Genome-resolved metagenomics revealed specialized *Bifidobacterium* capabilities for metabolizing human milk oligosaccharides and host glycoproteins.
- These findings suggest a synergistic role of breast milk and specific microbial metabolism in promoting gut barrier maturation.
Conclusions:
- Breast milk feeding and colonization by *Bifidobacterium* species are critical for postnatal intestinal barrier maturation in preterm infants.
- The specialized metabolic pathways of *Bifidobacterium* in utilizing breast milk components are key to this process.
- These discoveries can inform the development of targeted therapies to prevent and treat hyperpermeable gut conditions like NEC in preterm neonates.
Abstract:
"Leaky gut," or high intestinal barrier permeability, is common in preterm newborns. The role of the microbiota in this process remains largely uncharacterized. We employed both short- and long-read sequencing of the 16S rRNA gene and metagenomes to characterize the intestinal microbiome of a longitudinal cohort of 113 preterm infants born between 240/7 and 326/7 weeks of gestation. Enabled by enhanced taxonomic resolution, we found that a significantly increased abundance of Bifidobacterium breve and a diet rich in mother's breastmilk were associated with intestinal barrier maturation during the first week of life. We combined these factors using genome-resolved metagenomics and identified a highly specialized genetic capability of the Bifidobacterium strains to assimilate human milk oligosaccharides and host-derived glycoproteins. Our study proposes mechanistic roles of breastmilk feeding and intestinal microbial colonization in postnatal intestinal barrier maturation; these observations are critical toward advancing therapeutics to prevent and treat hyperpermeable gut-associated conditions, including necrotizing enterocolitis (NEC). IMPORTANCE Despite improvements in neonatal intensive care, necrotizing enterocolitis (NEC) remains a leading cause of morbidity and mortality. "Leaky gut," or intestinal barrier immaturity with elevated intestinal permeability, is the proximate cause of susceptibility to NEC. Early detection and intervention to prevent leaky gut in "at-risk" preterm neonates are critical for decreasing the risk of potentially life-threatening complications like NEC. However, the complex interactions between the developing gut microbial community, nutrition, and intestinal barrier function remain largely uncharacterized. In this study, we reveal the critical role of a sufficient breastmilk feeding volume and the specialized carbohydrate metabolism capability of Bifidobacterium in the coordinated postnatal improvement of the intestinal barrier. Determining the clinical and microbial biomarkers that drive the intestinal developmental disparity will inform early detection and novel therapeutic strategies to promote appropriate intestinal barrier maturation and prevent NEC and other adverse health conditions in preterm infants.
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