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A Murine Model of Fetal Exposure to Maternal Inflammation to Study the Effects of Acute Chorioamnionitis on Newborn Intestinal Development
Published on: June 24, 2020
Early-life gut inflammation drives sex-dependent shifts in the microbiome-endocrine-brain axis
Olivia Sullivan1, Claire Sie2, Katharine M Ng2
1Graduate Program in Neuroscience, University of British Columbia, Vancouver, Canada; Djavad Mowafaghian Centre for Brain Health, University of British Columbia, Vancouver, Canada.
Insights
Early-life gut inflammation, modeled using dextran sulfate sodium (DSS), negatively impacts neurodevelopment and alters gut microbiota. This research highlights sex-specific effects on behavior and physiology, underscoring the developmental risks of pediatric inflammatory bowel disease (IBD).
Area of Science:
- Neuroscience
- Microbiology
- Developmental Biology
Background:
- The gut microbiota-brain axis is crucial for adult brain function, but its role in neurodevelopment during early life remains unclear.
- Pediatric inflammatory bowel disease (IBD) affects millions, with chronic inflammation potentially disrupting critical developmental processes.
- Existing research on gut inflammation's impact on early neurodevelopment, particularly sex-specific effects, is limited.
Purpose of the Study:
- To investigate the effects of early-life gut inflammation on neurodevelopment, microbiota, and endocrine signaling.
- To establish a pediatric chemical model of IBD using dextran sulfate sodium (DSS) to study these impacts.
- To identify sex-specific differences in response to early-life gut inflammation.
Main Methods:
- A pediatric chemical model of IBD was developed using dextran sulfate sodium (DSS) in mice.
- The study analyzed intestinal inflammation, microbiota composition, circulating metabolites, and endocrine markers.
- Behavioral tests, including mate-seeking, and brain microglial morphology were assessed, with a focus on sex-specific outcomes.
Main Results:
- DSS treatment induced intestinal inflammation and altered gut microbiota, affecting short-chain fatty acid (SCFA) producers and glucuronidase (GUS) activity.
- Male mice exhibited impaired mate-seeking behavior, reduced seminal vesicle size, lower androgens, and altered intestinal enzyme activity.
- Sex-specific alterations in microglial morphology were observed in the brains of DSS-treated mice.
Conclusions:
- Early-life gut inflammation significantly impacts neurodevelopment and gut microbiome composition, with long-lasting physiological consequences.
- Inflammation-induced changes in endocrine signaling and gut microbiota are sensitive during early development.
- The findings emphasize the critical need to understand and address the developmental risks associated with juvenile IBD.
Abstract:
Despite recent advances in understanding the connection between the gut microbiota and the adult brain, significant knowledge gaps remain regarding how gut inflammation affects brain development. We hypothesized that gut inflammation during early life would negatively affect neurodevelopment by disrupting microbiota communication to the brain. We therefore developed a novel pediatric chemical model of inflammatory bowel disease (IBD), an incurable condition affecting millions of people worldwide. IBD is characterized by chronic intestinal inflammation, and is associated with comorbid symptoms such as anxiety, depression and cognitive impairment. Notably, 25% of patients with IBD are diagnosed during childhood, and the effects of chronic inflammation during this critical developmental period remain poorly understood. This study investigated the effects of early-life gut inflammation induced by DSS (dextran sulfate sodium) on a range of microbiota, endocrine, and behavioral outcomes, focusing on sex-specific impacts. DSS-treated mice exhibited increased intestinal inflammation and altered microbiota membership, which correlated with changes in microbiota-derived circulating metabolites. The majority of behavioral measures were unaffected, with the exception of impaired mate-seeking behaviors in DSS-treated males. DSS-treated males also showed significantly smaller seminal vesicles, lower circulating androgens, and decreased intestinal hormone-activating enzyme activity compared to vehicle controls. In the brain, DSS treatment led to chronic, sex-specific alterations in microglial morphology. These results suggest that early-life gut inflammation causes changes in gut microbiota composition, affecting short-chain fatty acid (SCFA) producers and glucuronidase (GUS) activity, correlating with altered SCFA and androgen levels. The findings highlight the developmental sensitivity to inflammation-induced changes in endocrine signalling and emphasize the long-lasting physiological and microbiome changes associated with juvenile IBD.
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