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Quantitative 3D In Silico Modeling q3DISM of Cerebral Amyloid-beta Phagocytosis in Rodent Models of Alzheimer's Disease
Published on: December 26, 2016
Microbiota from Alzheimer's patients induce deficits in cognition and hippocampal neurogenesis
Stefanie Grabrucker1,2, Moira Marizzoni3,4, Edina Silajdžić5
1Department of Anatomy and Neuroscience, University College Cork, Ireland.
Abstract:
Alzheimer's disease is a complex neurodegenerative disorder leading to a decline in cognitive function and mental health. Recent research has positioned the gut microbiota as an important susceptibility factor in Alzheimer's disease by showing specific alterations in the gut microbiome composition of Alzheimer's patients and in rodent models. However, it is unknown whether gut microbiota alterations are causal in the manifestation of Alzheimer's symptoms. To understand the involvement of Alzheimer's patient gut microbiota in host physiology and behaviour, we transplanted faecal microbiota from Alzheimer's patients and age-matched healthy controls into microbiota-depleted young adult rats. We found impairments in behaviours reliant on adult hippocampal neurogenesis, an essential process for certain memory functions and mood, resulting from Alzheimer's patient transplants. Notably, the severity of impairments correlated with clinical cognitive scores in donor patients. Discrete changes in the rat caecal and hippocampal metabolome were also evident. As hippocampal neurogenesis cannot be measured in living humans but is modulated by the circulatory systemic environment, we assessed the impact of the Alzheimer's systemic environment on proxy neurogenesis readouts. Serum from Alzheimer's patients decreased neurogenesis in human cells in vitro and were associated with cognitive scores and key microbial genera. Our findings reveal for the first time, that Alzheimer's symptoms can be transferred to a healthy young organism via the gut microbiota, confirming a causal role of gut microbiota in Alzheimer's disease, and highlight hippocampal neurogenesis as a converging central cellular process regulating systemic circulatory and gut-mediated factors in Alzheimer's.
Insights
Alzheimer's disease symptoms can be transferred to healthy rats via gut microbiota from patients, indicating a causal role. This highlights gut microbiota and hippocampal neurogenesis in Alzheimer's disease progression.
Area of Science:
- Neuroscience
- Microbiology
- Gastroenterology
Background:
- Alzheimer's disease (AD) is a neurodegenerative disorder impacting cognition.
- Gut microbiota alterations are observed in AD patients, but their causal role is unclear.
- Hippocampal neurogenesis is crucial for memory and mood, processes affected in AD.
Purpose of the Study:
- To investigate the causal role of Alzheimer's patient gut microbiota in AD pathogenesis.
- To determine the impact of transplanted gut microbiota on host physiology and behavior.
- To explore the link between gut microbiota, systemic factors, and hippocampal neurogenesis in AD.
Main Methods:
- Fecal microbiota transplantation from AD patients and healthy controls into germ-free rats.
- Behavioral testing of recipient rats assessing functions dependent on hippocampal neurogenesis.
- Metabolomic analysis of rat cecum and hippocampus.
- In vitro assessment of human neural stem cell neurogenesis using serum from AD patients and controls.
Main Results:
- Transplantation of AD patient microbiota impaired behaviors reliant on hippocampal neurogenesis in rats.
- Impairment severity correlated with cognitive scores in human AD patients.
- Distinct metabolic changes were observed in the rats' cecal and hippocampal tissues.
- Serum from AD patients reduced neurogenesis in human cells in vitro.
Conclusions:
- Gut microbiota from Alzheimer's patients can transfer AD-like symptoms to healthy recipients, establishing a causal link.
- Hippocampal neurogenesis is a key cellular process affected by gut microbiota and systemic factors in AD.
- This study underscores the gut microbiota's critical role in Alzheimer's disease pathogenesis.
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