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Close Association of Myeloperoxidase-Producing Activated Microglia with Amyloid Plaques in Hypercholesterolemic
Yuanxin Chen1, Tianduo Wang1, Kem A Rogers2
1Robarts Research Institute, Western University, London, Canada.
Abstract:
Microglial activation and oxidative stress have been linked to the formation of amyloid plaques found in Alzheimer's disease (AD). Epidemiologic and experimental evidence also suggests that cholesterol (CH) contributes to the pathogenesis of AD, particularly the formation of amyloid plaques. We have previously described the development of amyloid-β (Aβ) plaques in New Zealand white rabbits maintained on a 0.125%-0.25% w/w CH diet for extended periods of time (28 months). Here we further characterize this model with combined immunofluorescence and immunohistochemical staining to evaluate markers of immune cell activation. Five out of eight CH-fed rabbits, but not control rabbits, developed extracellular Aβ plaques in both the hippocampus and cortex. Significantly (p < 0.05) higher CD11b microglial staining was found in the hippocampus, temporal cortex, and frontal cortex of CH-fed versus control rabbits. In the temporal cortex and parietal cortex, active CD-11b- and ferritin-positive microglia were found in close proximity to Aβ plaques. Classification and quantification of activated microglia in the temporal cortex showed that 68±12.9%, 25±7.3%, and 7±2.7% of all microglia had a primed, reactive, and amoeboid phenotype, respectively. Activated microglia also expressed myeloperoxidase which was co-localized to amyloid deposits. Our findings in this dietary-based model lend further support of a role of activated microglia and oxidative stress during the development of AD and strengthens the links between hypercholesterolemia, inflammatory status, and AD.
Insights
High cholesterol diets promote amyloid plaque formation and microglial activation in rabbits, suggesting a link between hypercholesterolemia, inflammation, and Alzheimer's disease progression.
Area of Science:
- Neuroscience
- Immunology
- Pathology
Background:
- Microglial activation and oxidative stress are implicated in Alzheimer's disease (AD) amyloid plaque formation.
- Cholesterol (CH) is increasingly recognized as a factor in AD pathogenesis, particularly amyloid plaque development.
Purpose of the Study:
- To further characterize a rabbit model of diet-induced hypercholesterolemia and amyloid-β (Aβ) plaque formation.
- To investigate markers of immune cell activation, specifically microglia, in relation to Aβ plaques.
Main Methods:
- Rabbits were fed a cholesterol-enriched diet for 28 months.
- Combined immunofluorescence and immunohistochemical staining were used to evaluate microglial activation markers (CD11b, myeloperoxidase) and Aβ plaques.
- Microglial phenotypes (primed, reactive, amoeboid) were classified and quantified.
Main Results:
- Five of eight cholesterol-fed rabbits developed extracellular Aβ plaques in the hippocampus and cortex.
- Cholesterol-fed rabbits showed significantly higher CD11b microglial staining in multiple brain regions compared to controls.
- Activated microglia, expressing CD11b and myeloperoxidase, were found near Aβ plaques.
Conclusions:
- Diet-induced hypercholesterolemia in rabbits leads to Aβ plaque formation and microglial activation.
- This model supports the role of activated microglia and oxidative stress in AD development.
- Findings strengthen the link between hypercholesterolemia, inflammation, and Alzheimer's disease.
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