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Intracerebroventricular Delivery of Gut-Derived Microbial Metabolites in Freely Moving Mice
Published on: June 2, 2022
Gut microbiota-driven metabolic alterations reveal gut-brain communication in Alzheimer's disease model mice
Yijing Chen1,2, Yinhu Li1,2, Yingying Fan1,2
1Chinese Academy of Sciences Key Laboratory of Brain Connectome and Manipulation, Shenzhen Key Laboratory of Translational Research for Brain Diseases, The Brain Cognition and Brain Disease Institute, Shenzhen Institute of Advanced Technology, Chinese Academy of Sciences, Shenzhen-Hong Kong Institute of Brain Science-Shenzhen Fundamental Research Institutions, Shenzhen, China.
Abstract:
The gut microbiota (GM) and its metabolites affect the host nervous system and are involved in the pathogeneses of various neurological diseases. However, the specific GM alterations under pathogenetic pressure and their contributions to the "microbiota - metabolite - brain axis" in Alzheimer's disease (AD) remain unclear. Here, we investigated the GM and the fecal, serum, cortical metabolomes in APP/PS1 and wild-type (WT) mice, revealing distinct hub bacteria in AD mice within scale-free GM networks shared by both groups. Moreover, we identified diverse peripheral - central metabolic landscapes between AD and WT mice that featured bile acids (e.g. deoxycholic and isodeoxycholic acid) and unsaturated fatty acids (e.g. 11Z-eicosenoic and palmitoleic acid). Machine-learning models revealed the relationships between the differential/hub bacteria and these metabolic signatures from the periphery to the brain. Notably, AD-enriched Dubosiella affected AD occurrence via cortical palmitoleic acid and vice versa. Considering the transgenic background of the AD mice, we propose that Dubosiella enrichment impedes AD progression via the synthesis of palmitoleic acid, which has protective properties against inflammation and metabolic disorders. We identified another association involving fecal deoxycholic acid-mediated interactions between the AD hub bacteria Erysipelatoclostridium and AD occurrence, which was corroborated by the correlation between deoxycholate levels and cognitive scores in humans. Overall, this study elucidated the GM network alterations, contributions of the GM to peripheral - central metabolic landscapes, and mediatory roles of metabolites between the GM and AD occurrence, thus revealing the critical roles of bacteria in AD pathogenesis and gut - brain communications under pathogenetic pressure.
Insights
Gut bacteria alterations in Alzheimer's disease (AD) influence metabolites and brain function. Specific bacteria like Dubosiella and Erysipelatoclostridium impact AD progression through metabolic pathways, highlighting gut-brain communication in neurological disease.
Area of Science:
- Neuroscience
- Microbiology
- Metabolomics
Background:
- The gut microbiota (GM) influences the nervous system and neurological diseases.
- Specific GM changes and their role in the gut-brain axis in Alzheimer's disease (AD) are not fully understood.
Purpose of the Study:
- To investigate GM alterations and metabolic profiles in AD mice.
- To elucidate the connections within the microbiota-metabolite-brain axis in AD pathogenesis.
Main Methods:
- Comparative analysis of GM composition, fecal, serum, and cortical metabolomes in APP/PS1 (AD) and wild-type (WT) mice.
- Utilized machine-learning models to identify relationships between bacteria and metabolites.
- Correlated metabolite levels with cognitive scores in human subjects.
Main Results:
- Identified distinct hub bacteria in AD mice within shared GM networks.
- Revealed differences in peripheral and central metabolic landscapes, including bile acids and unsaturated fatty acids.
- Found that Dubosiella enrichment impacts AD via palmitoleic acid, and deoxycholic acid mediates interactions between Erysipelatoclostridium and AD occurrence.
Conclusions:
- GM alterations play a critical role in AD pathogenesis.
- Specific metabolites mediate communication between the gut microbiota and AD occurrence.
- Findings highlight the importance of the gut-brain axis in neurological disorders.

