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Manganese-induced sex-specific gut microbiome perturbations in C57BL/6 mice
Liang Chi1, Bei Gao2, Xiaoming Bian2
1Department of Environmental Sciences and Engineering, University of North Carolina at Chapel Hill, 27599, United States.
Abstract:
Overexposure to manganese (Mn) leads to toxic effects, such as promoting the development of Parkinson's-like neurological disorders. The gut microbiome is deeply involved in immune development, host metabolism, and xenobiotics biotransformation, and significantly influences central nervous system (CNS) via the gut-brain axis, i.e. the biochemical signaling between the gastrointestinal tract and the CNS. However, it remains unclear whether Mn can affect the gut microbiome and its metabolic functions, particularly those linked to neurotoxicity. In addition, sex-specific effects of Mn have been reported, with no mechanism being identified yet. Recently, we have shown that the gut microbiome is largely different between males and females, raising the possibility that differential gut microbiome responses may contribute to sex-selective toxicity of Mn. Here, we applied high-throughput sequencing and gas chromatography-mass spectrometry (GC-MS) metabolomics to explore how Mn2+ exposure affects the gut microbiome and its metabolism in C57BL/6 mice. Mn2+ exposure perturbed the gut bacterial compositions, functional genes and fecal metabolomes in a highly sex-specific manner. In particular, bacterial genes and/or key metabolites of neurotransmitter synthesis and pro-inflammatory mediators are significantly altered by Mn2+ exposure, which can potentially affect chemical signaling of gut-brain interactions. Likewise, functional genes involved in iron homeostasis, flagellar motility, quorum sensing, and Mn transportation/oxidation are also widely changed by Mn2+ exposure. Taken together, this study has demonstrated that Mn2+ exposure perturbs the gut microbiome and its metabolic functions, which highlights the potential role of the gut microbiome in Mn2+ toxicity, particularly its sex-specific toxic effects.
Insights
Manganese (Mn) exposure alters gut bacteria and their metabolism, impacting the gut-brain axis. These effects are sex-specific, suggesting the gut microbiome plays a role in manganese neurotoxicity.
Area of Science:
- Environmental Health
- Neuroscience
- Microbiology
Background:
- Manganese (Mn) overexposure causes Parkinson's-like symptoms.
- The gut microbiome influences the central nervous system (CNS) via the gut-brain axis.
- Mechanisms behind Mn's sex-specific neurotoxicity are unknown.
Purpose of the Study:
- To investigate how Mn2+ exposure affects the gut microbiome and its metabolism.
- To explore sex-specific responses to Mn2+ exposure in the gut microbiome.
- To identify potential links between gut microbiome alterations and Mn neurotoxicity.
Main Methods:
- High-throughput sequencing of gut bacteria.
- Gas chromatography-mass spectrometry (GC-MS) for fecal metabolomics.
- Analysis in C57BL/6 mice models.
Main Results:
- Mn2+ exposure significantly altered gut bacterial composition and function in a sex-specific manner.
- Key bacterial genes and metabolites involved in neurotransmitter synthesis and inflammation were affected.
- Genes related to iron homeostasis, motility, and Mn transport were also modulated.
Conclusions:
- Mn2+ exposure disrupts the gut microbiome and its metabolic functions.
- These disruptions highlight the gut microbiome's role in Mn neurotoxicity.
- The study underscores the importance of sex-specific responses in Mn toxicity.
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