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Updated: Aug 22, 2025

Analyzing the Parkinson's Disease Mouse Model Induced by Adeno-associated Viral Vectors Encoding Human α-Synuclein
Published on: July 29, 2022
A prebiotic diet modulates microglial states and motor deficits in α-synuclein overexpressing mice
Reem Abdel-Haq1,2, Johannes C M Schlachetzki3, Joseph C Boktor1
1Division of Biology and Biological Engineering, California Institute of Technology, Pasadena, United States.
Abstract:
Parkinson's disease (PD) is a movement disorder characterized by neuroinflammation, α-synuclein pathology, and neurodegeneration. Most cases of PD are non-hereditary, suggesting a strong role for environmental factors, and it has been speculated that disease may originate in peripheral tissues such as the gastrointestinal (GI) tract before affecting the brain. The gut microbiome is altered in PD and may impact motor and GI symptoms as indicated by animal studies, although mechanisms of gut-brain interactions remain incompletely defined. Intestinal bacteria ferment dietary fibers into short-chain fatty acids, with fecal levels of these molecules differing between PD and healthy controls and in mouse models. Among other effects, dietary microbial metabolites can modulate activation of microglia, brain-resident immune cells implicated in PD. We therefore investigated whether a fiber-rich diet influences microglial function in α-synuclein overexpressing (ASO) mice, a preclinical model with PD-like symptoms and pathology. Feeding a prebiotic high-fiber diet attenuates motor deficits and reduces α-synuclein aggregation in the substantia nigra of mice. Concomitantly, the gut microbiome of ASO mice adopts a profile correlated with health upon prebiotic treatment, which also reduces microglial activation. Single-cell RNA-seq analysis of microglia from the substantia nigra and striatum uncovers increased pro-inflammatory signaling and reduced homeostatic responses in ASO mice compared to wild-type counterparts on standard diets. However, prebiotic feeding reverses pathogenic microglial states in ASO mice and promotes expansion of protective disease-associated macrophage (DAM) subsets of microglia. Notably, depletion of microglia using a CSF1R inhibitor eliminates the beneficial effects of prebiotics by restoring motor deficits to ASO mice despite feeding a prebiotic diet. These studies uncover a novel microglia-dependent interaction between diet and motor symptoms in mice, findings that may have implications for neuroinflammation and PD.
Insights
A high-fiber diet improved motor function and reduced Parkinson's disease pathology in mice by modulating gut bacteria and brain immune cells called microglia. This highlights a diet-dependent, microglia-mediated link between gut health and motor symptoms.
Area of Science:
- Neuroscience
- Immunology
- Microbiology
Background:
- Parkinson's disease (PD) involves neuroinflammation and alpha-synuclein pathology, with potential origins in the gut.
- Environmental factors, including the gut microbiome, are implicated in non-hereditary PD.
- Gut microbial metabolites, like short-chain fatty acids, can influence brain immune cells (microglia).
Purpose of the Study:
- To investigate the impact of a fiber-rich diet on microglial function in a mouse model of Parkinson's disease (PD).
- To explore the role of the gut microbiome and its metabolites in PD-related neuroinflammation and motor deficits.
Main Methods:
- Utilized alpha-synuclein overexpressing (ASO) mice, a preclinical model for PD.
- Administered a prebiotic, high-fiber diet to ASO mice and compared them to controls on standard diets.
- Analyzed motor function, alpha-synuclein aggregation, gut microbiome composition, and microglial activation using single-cell RNA-seq.
- Depleted microglia using a CSF1R inhibitor to assess their role in diet-mediated effects.
Main Results:
- Prebiotic feeding attenuated motor deficits and reduced alpha-synuclein aggregation in ASO mice.
- Dietary intervention normalized the gut microbiome profile and decreased microglial activation.
- Single-cell RNA-seq revealed that prebiotic feeding reversed pro-inflammatory microglial states and promoted protective disease-associated macrophage (DAM) subsets.
- Microglia depletion abolished the beneficial effects of the prebiotic diet on motor function.
Conclusions:
- Dietary fiber intake influences microglial function and ameliorates motor deficits in a PD mouse model.
- A microglia-dependent gut-brain axis mediates the beneficial effects of a high-fiber diet on PD-like pathology.
- These findings suggest a novel therapeutic strategy targeting diet and neuroinflammation for Parkinson's disease.
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