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Non-Invasive Model of Neuropathogenic Escherichia coli Infection in the Neonatal Rat
Published on: October 29, 2014
Neonatal antibiotics have long term sex-dependent effects on the enteric nervous system
Sabrina S B Poon1, Lin Y Hung1, Qinglong Wu2,3
1Department of Anatomy and Physiology, The University of Melbourne, Parkville, Victoria, Australia.
Insights
Early antibiotic exposure in infants can disrupt gut function and the enteric nervous system (ENS) long-term, with sex-specific effects on gut physiology and neurochemistry. This study reveals lasting impacts on the gut microbiome and serotonin levels, highlighting potential health risks.
Area of Science:
- Microbiology
- Neuroscience
- Gastroenterology
Background:
- Infants and young children receive high antibiotic exposures globally.
- Early life antibiotic exposure is linked to increased susceptibility to later-life diseases, including gut disorders.
- The long-term effects of early antibiotic use on gut physiology and the enteric nervous system (ENS) are not fully understood.
Purpose of the Study:
- To investigate the lasting impact of neonatal antibiotic treatment on the colon and ENS in young adult mice.
- To determine if these effects are sex-specific.
Main Methods:
- Neonatal mice were treated with vancomycin for the first 10 postnatal days.
- Colon physiology, ENS neurochemistry, Ca2+ activity, gut microbiota, and mucosal serotonin (5-HT) levels were examined in young adulthood (6 weeks old).
Main Results:
- Neonatal vancomycin treatment caused sexually dimorphic disruptions in gut function, including altered whole gut transit time and fecal water content.
- Significant sex-specific impacts on the neurochemistry and Ca2+ activity of myenteric and submucosal neurons were observed.
- Lasting changes in colonic microbiota and depletion of mucosal serotonin were noted, independent of sex, but host responses were sex-specific.
Conclusions:
- Neonatal antibiotic exposure has long-term, sex-specific consequences on gut physiology and the ENS.
- These findings demonstrate sustained alterations in the gut microbiome and serotonin pathways.
- The study underscores the importance of considering sex differences in the long-term health implications of early-life antibiotic use.
Abstract:
Infants and young children receive the highest exposures to antibiotics globally. Although there is building evidence that early life exposure to antibiotics increases susceptibility to various diseases including gut disorders later in life, the lasting impact of early life antibiotics on the physiology of the gut and its enteric nervous system (ENS) remains unclear. We treated neonatal mice with the antibiotic vancomycin during their first 10 postnatal days, then examined potential lasting effects of the antibiotic treatment on their colons during young adulthood (6 weeks old). We found that neonatal vancomycin treatment disrupted the gut functions of young adult female and male mice differently. Antibiotic-exposed females had significantly longer whole gut transit while antibiotic-treated males had significantly lower faecal weights compared to controls. Both male and female antibiotic-treated mice had greater percentages of faecal water content. Neonatal vancomycin treatment also had sexually dimorphic impacts on the neurochemistry and Ca2+ activity of young adult myenteric and submucosal neurons. Myenteric neurons of male mice were more disrupted than those of females, while opposing changes in submucosal neurons were seen in each sex. Neonatal vancomycin also induced sustained changes in colonic microbiota and lasting depletion of mucosal serotonin (5-HT) levels. Antibiotic impacts on microbiota and mucosal 5-HT were not sex-dependent, but we propose that the responses of the host to these changes are sex-specific. This first demonstration of long-term impacts of neonatal antibiotics on the ENS, gut microbiota and mucosal 5-HT has important implications for gut function and other physiological systems of the host. KEY POINTS: Early life exposure to antibiotics can increase susceptibility to diseases including functional gastrointestinal (GI) disorders later in life. Yet, the lasting impact of this common therapy on the gut and its enteric nervous system (ENS) remains unclear. We investigated the long-term impact of neonatal antibiotic treatment by treating mice with the antibiotic vancomycin during their neonatal period, then examining their colons during young adulthood. Adolescent female mice given neonatal vancomycin treatment had significantly longer whole gut transit times, while adolescent male and female mice treated with neonatal antibiotics had significantly wetter stools. Effects of neonatal vancomycin treatment on the neurochemistry and Ca2+ activity of myenteric and submucosal neurons were sexually dimorphic. Neonatal vancomycin also had lasting effects on the colonic microbiome and mucosal serotonin biosynthesis that were not sex-dependent. Different male and female responses to antibiotic-induced disruptions of the ENS, microbiota and mucosal serotonin biosynthesis can lead to sex-specific impacts on gut function.
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