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Updated: Jun 17, 2025

A Murine Model of Group B Streptococcus Vaginal Colonization
Published on: November 16, 2016
The impact of butyrate on group B Streptococcus-induced intestinal barrier disruption
Kristen Dominguez1, Alexia N Pearah2, April K Lindon1
1Molecular Medicine, Morsani College of Medicine, University of South Florida, Tampa, Florida, USA.
Insights
Maternal butyrate supplementation can reduce Group B Streptococcus (GBS) intestinal colonization and invasion in newborns. This dietary strategy may bolster intestinal barrier function and mitigate neonatal sepsis risk.
Area of Science:
- Microbiology and Immunology
- Neonatal Health
- Gastroenterology
Background:
- Group B Streptococcus (GBS) is a major cause of neonatal sepsis, often originating from intestinal colonization.
- Neonates are susceptible due to immature intestinal barriers, which GBS can exploit.
- Butyrate, a microbial metabolite, enhances intestinal barrier function and can transfer to the fetus in utero.
Purpose of the Study:
- To investigate whether butyrate can mitigate GBS-induced disruption of intestinal barriers.
- To assess the impact of butyrate on GBS adherence, invasion, and epithelial barrier integrity.
- To evaluate the efficacy of maternal butyrate treatment in a mouse model of neonatal GBS sepsis.
Main Methods:
- Utilized human intestinal epithelial cell (IEC) lines and enteroids to assess GBS effects with and without butyrate.
- Measured GBS-induced cell death, adhesion, invasion, and monolayer permeability in vitro.
- Employed a mouse model with maternal butyrate administration to evaluate GBS intestinal burden in offspring.
Main Results:
- Butyrate significantly reduced GBS-induced cell death, invasion, and monolayer permeability in vitro.
- In vitro, butyrate decreased GBS translocation across intestinal epithelial models.
- Maternal butyrate treatment in mice led to a decreased GBS intestinal burden in neonatal offspring.
Conclusions:
- Butyrate directly bolsters intestinal epithelial barrier function against GBS.
- Maternal butyrate supplementation shows potential in reducing neonatal GBS colonization and sepsis risk.
- Dietary metabolites like butyrate represent a promising preventative strategy against neonatal GBS infections.
Abstract:
Group B Streptococcus (Streptococcus agalactiae; GBS) is a leading cause of neonatal sepsis worldwide. As a pathobiont of the intestinal tract, it is capable of translocating across barriers leading to invasive disease. Neonatal susceptibility to invasive disease stems from immature intestinal barriers. GBS intestinal colonization induces major transcriptomic changes in the intestinal epithelium related to barrier function. Butyrate, a microbial metabolite produced by fermentation of dietary fiber, bolsters intestinal barrier function against enteric pathogens, and these effects can be transferred in utero via the placenta to the developing fetus. Our aim was to determine if butyrate mitigates GBS disruption of intestinal barriers. We used human intestinal epithelial cell (IEC) lines to evaluate the impact of butyrate on GBS-induced cell death and GBS adhesion and invasion. IECs and human fetal tissue-derived enteroids were used to evaluate monolayer permeability. We evaluated the impact of maternal butyrate treatment (mButyrate) using our established mouse model of neonatal GBS intestinal colonization and late-onset sepsis. We found that butyrate reduces GBS-induced cell death, GBS invasion, monolayer permeability, and translocation in vitro. In mice, mButyrate decreases GBS intestinal burden in offspring. Our results demonstrate the importance of bacterial metabolites, such as butyrate, in their potential to bolster epithelial barrier function and mitigate neonatal sepsis risk.IMPORTANCEGroup B Streptococcus (GBS) is a leading cause of neonatal morbidity and mortality. It is a commensal of the intestines that can translocate across barriers leading to sepsis in vulnerable newborns. With the rise in antibiotic-resistant strains and no licensed vaccine, there is an urgent need for preventative strategies. Butyrate, a short-chain fatty acid metabolized in the gut, enhances barrier function against pathogens. Importantly, butyrate is transferred in utero, conferring these benefits to infants. Here, we demonstrate that butyrate reduces GBS colonization and epithelial invasion. These effects were not microbiome-driven, suggesting butyrate directly impacts epithelial barrier function. Our results highlight the potential impact of maternal dietary metabolites, like butyrate, as a strategy to mitigate neonatal sepsis risk.
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