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Sphingomonas Paucimobilis-derived Extracellular Vesicles Reverse Aβ-induced Dysregulation of Neurotrophic Factors,
Eun-Hwa Lee1, Hyejin Kwon1, So-Young Park1
1Department of Brain and Cognitive Sciences, Scranton College, Ewha Womans University, Seoul 03760, Korea.
Abstract:
Recent studies have shown an increased abundance of Sphingomonas paucimobilis, an aerobic, Gram-negative bacterium with a distinctive cell envelope rich in glycosphingolipids, within the gut microbiome of individuals with Alzheimer Disease (AD). However, the fact that S. paucimobilis is a well-known pathogen associated with nosocomial infections presents a significant challenge in investigating whether its presence in the gut microbiome is detrimental or beneficial, particularly in the context of AD. This study examines the impact of S. paucimobilis-derived extracellular vesicles (Spa-EV) on Aβ-induced pathology in cellular and animal models of AD. Microarray analysis reveals that Spa-EV treatment modulates Aβ42-induced alterations in gene expression in both HT22 neuronal cells and BV2 microglia cells. Among the genes significantly affected by Spa-EV, notable examples include Bdnf, Nt3/4, and Trkb, which are key players of neurotrophic signaling; Pgc1α, an upstream regulator of mitochondrial biogenesis; Mecp2 and Sirt1, epigenetic factors that regulate numerous gene expressions; and Il1β, Tnfα, and Nfκb-p65, which are associated with neuroinflammation. Remarkably, Spa-EV effectively reverses Aβ42-induced alteration in the expression of these genes through the upregulation of Mecp2. Furthermore, administration of Spa-EV in Tg-APP/PS1 mice restores the reduced expression of neurotrophic factors, Pgc1α, MeCP2, and Sirt1, while suppressing the increased expression of proinflammatory genes in the brain. Our results indicate that Spa-EV has the potential to reverse Aβ-induced dysregulation of gene expression in neuronal and microglial cells. These alterations encompass those essential for neurotrophic signaling and neuronal plasticity, mitochondrial function, and the regulation of inflammatory processes.
Insights
Sphingomonas paucimobilis extracellular vesicles (Spa-EV) may reverse Alzheimer Disease (AD) pathology by restoring gene expression in brain cells. This study shows Spa-EVs counteract amyloid-beta effects, offering potential therapeutic avenues for AD.
Area of Science:
- Microbiology and Neuroscience
- Gut-brain axis research
- Bacterial extracellular vesicle applications
Background:
- Increased Sphingomonas paucimobilis abundance observed in Alzheimer Disease (AD) gut microbiomes.
- S. paucimobilis's pathogenic nature complicates its role in AD.
- Need to investigate the impact of bacterial components, like extracellular vesicles, on AD pathology.
Purpose of the Study:
- To evaluate the effect of S. paucimobilis-derived extracellular vesicles (Spa-EV) on amyloid-beta (Aβ)-induced pathology.
- To analyze Spa-EVs' impact on gene expression in neuronal and microglial cells relevant to AD.
- To assess Spa-EVs' therapeutic potential in a mouse model of AD.
Main Methods:
- Utilized cellular (HT22, BV2) and animal (Tg-APP/PS1 mice) models of AD.
- Treated cells and mice with S. paucimobilis extracellular vesicles (Spa-EV).
- Performed microarray analysis to assess gene expression changes related to neurotrophic signaling, mitochondrial function, epigenetics, and neuroinflammation.
Main Results:
- Spa-EV treatment modulated Aβ42-induced gene expression alterations in neuronal and microglial cells.
- Spa-EVs upregulated key genes like Bdnf, Nt3/4, Trkb, Pgc1α, Mecp2, and Sirt1, while downregulating inflammatory markers (Il1β, Tnfα).
- In AD mice, Spa-EV administration restored neurotrophic and epigenetic factors and suppressed brain inflammation.
Conclusions:
- S. paucimobilis extracellular vesicles (Spa-EV) demonstrate potential to reverse Aβ-induced gene dysregulation in AD.
- Spa-EVs positively influence neurotrophic signaling, neuronal plasticity, mitochondrial function, and inflammatory processes.
- These findings suggest Spa-EVs as a potential therapeutic strategy for Alzheimer Disease.
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