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Updated: Jun 26, 2026

Isolation of Cortical Microglia with Preserved Immunophenotype and Functionality From Murine Neonates
Published on: January 30, 2014
Beta amyloid oligomers and fibrils stimulate differential activation of primary microglia
Cindy M Sondag1, Gunjan Dhawan, Colin K Combs
1Department of Pharmacology, University of North Dakota School of Medicine and Health Sciences, Grand Forks, ND 58203, USA. csondag@medicine.nodak.edu
Background:
Beta amyloid (Abeta) peptides are the major constituents of the senile plaques present in Alzheimer's diseased brain. Pathogenesis has been associated with the aggregated form of the peptide as these fibrils are the conformation readily found in the plaques. However, recent studies have shown that the nonaggregated, soluble assemblies of Abeta have the potential to stimulate neuronal dysfunction and may play a prominent role in the pathogenesis of Alzheimer's disease.
Methods:
Soluble, synthetic Abeta1-42 oligomers were prepared producing mainly dimer-trimer conformations as assessed by SDS-PAGE. Similar analysis demonstrated fibril preparations to produce large insoluble aggregates unable to migrate out of the stacking portion of the gels. These peptide preparations were used to stimulate primary murine microglia and cortical neuron cultures. Microglia were analyzed for changes in signaling response and secretory phenotype via Western analysis and ELISA. Viability was examined by quantifying lactate dehydrogenase release from the cultures.
Results:
Abeta oligomers and fibrils were used to stimulate microglia for comparison. Both the oligomers and fibrils stimulated proinflammatory activation of primary microglia but the specific conformation of the peptide determined the activation profile. Oligomers stimulated increased levels of active, phosphorylated Lyn and Syk kinase as well as p38 MAP kinase compared to fibrils. Moreover, oligomers stimulated a differential secretory profile for interleukin 6, monocyte chemoattractant protein-1 and keratinocyte chemoattractant when compared to fibrils. Finally, soluble oligomers stimulated death of cultured cortical neurons that was exacerbated by the presence of microglia.
Conclusion:
These data suggest that fibrils and oligomers stimulate unique signaling responses in microglia leading to discrete secretory changes and effects on neuron survival. This suggests that inflammation changes during disease may be the consequence of unique peptide-stimulated events and each conformation may represent an individual anti-inflammatory therapeutic target.
Insights
Beta amyloid (Abeta) oligomers, unlike fibrils, activate distinct microglial inflammatory pathways and harm neurons. These findings highlight Abeta conformations as potential therapeutic targets for Alzheimer's disease.
Area of Science:
- Neuroscience
- Immunology
- Biochemistry
Background:
- Alzheimer's disease (AD) is characterized by beta-amyloid (Abeta) plaques.
- While aggregated Abeta fibrils are found in plaques, soluble Abeta oligomers may drive AD pathogenesis.
- Oligomeric Abeta's role in neuronal dysfunction warrants further investigation.
Purpose of the Study:
- To compare the effects of Abeta oligomers and fibrils on primary microglia and neurons.
- To investigate the distinct signaling and secretory responses induced by different Abeta conformations.
- To assess the impact of Abeta conformations on neuronal viability.
Main Methods:
- Synthetic Abeta1-42 oligomers (dimer-trimer) and fibrils were prepared and characterized.
- Primary murine microglia and cortical neuron cultures were stimulated with Abeta preparations.
- Microglial activation, secretory profiles, and neuronal viability were analyzed.
Main Results:
- Both Abeta oligomers and fibrils induced pro-inflammatory microglial activation.
- Oligomers uniquely increased phosphorylated Lyn, Syk, and p38 MAP kinase levels.
- Oligomers induced a distinct secretory profile of cytokines and chemokines compared to fibrils.
- Soluble Abeta oligomers caused cortical neuron death, exacerbated by microglia.
Conclusions:
- Abeta oligomers and fibrils elicit distinct microglial signaling and secretory responses.
- These conformation-specific events influence neuronal survival.
- Targeting specific Abeta conformations may offer novel anti-inflammatory therapeutic strategies for AD.
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