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Published on: March 25, 2016
Maternal Microbiota Modulate a Fragile X-like Syndrome in Offspring Mice
Bernard J Varian1, Katherine T Weber1, Lily J Kim1
1Division of Comparative Medicine, Massachusetts Institute of Technology, Cambridge, MA 02139, USA.
Abstract:
Maternal microbial dysbiosis has been implicated in adverse postnatal health conditions in offspring, such as obesity, cancer, and neurological disorders. We observed that the progeny of mice fed a Westernized diet (WD) with low fiber and extra fat exhibited higher frequencies of stereotypy, hyperactivity, cranial features and lower FMRP protein expression, similar to what is typically observed in Fragile X Syndrome (FXS) in humans. We hypothesized that gut dysbiosis and inflammation during pregnancy influenced the prenatal uterine environment, leading to abnormal phenotypes in offspring. We found that oral in utero supplementation with a beneficial anti-inflammatory probiotic microbe, Lactobacillus reuteri, was sufficient to inhibit FXS-like phenotypes in offspring mice. Cytokine profiles in the pregnant WD females showed that their circulating levels of pro-inflammatory cytokine interleukin (Il)-17 were increased relative to matched gravid mice and to those given supplementary L. reuteri probiotic. To test our hypothesis of prenatal contributions to this neurodevelopmental phenotype, we performed Caesarian (C-section) births using dissimilar foster mothers to eliminate effects of maternal microbiota transferred during vaginal delivery or nursing after birth. We found that foster-reared offspring still displayed a high frequency of these FXS-like features, indicating significant in utero contributions. In contrast, matched foster-reared progeny of L. reuteri-treated mothers did not exhibit the FXS-like typical features, supporting a key role for microbiota during pregnancy. Our findings suggest that diet-induced dysbiosis in the prenatal uterine environment is strongly associated with the incidence of this neurological phenotype in progeny but can be alleviated by addressing gut dysbiosis through probiotic supplementation.
Insights
Maternal Western diet causes gut dysbiosis, leading to Fragile X Syndrome-like (FXS) features in offspring. Probiotic supplementation with Lactobacillus reuteri during pregnancy prevents these neurodevelopmental issues.
Area of Science:
- Neuroscience
- Microbiology
- Developmental Biology
Background:
- Maternal microbial dysbiosis is linked to adverse offspring health outcomes.
- A Western diet (WD) in pregnant mice induced FXS-like phenotypes in progeny.
Purpose of the Study:
- To investigate the role of maternal gut dysbiosis and inflammation in prenatal development.
- To determine if probiotic supplementation can prevent neurodevelopmental disorders in offspring.
Main Methods:
- Mice were fed a WD or WD with Lactobacillus reuteri probiotic.
- Caesarian sections and foster rearing were used to control for maternal microbiota transfer.
- Offspring phenotypes and cytokine profiles (e.g., IL-17) were analyzed.
Main Results:
- WD-fed mothers produced offspring with FXS-like features (stereotypy, hyperactivity, low FMRP).
- Probiotic supplementation normalized these phenotypes.
- Elevated IL-17 levels were observed in WD-fed pregnant mice.
Conclusions:
- Diet-induced maternal gut dysbiosis during pregnancy significantly contributes to offspring neurodevelopmental disorders.
- In utero probiotic intervention can prevent these adverse outcomes.
- Targeting maternal microbiota may offer a strategy for preventing FXS-like conditions.
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