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Updated: Aug 17, 2026

Isolation of Cortical Microglia with Preserved Immunophenotype and Functionality From Murine Neonates
Published on: January 30, 2014
Microglia either promote or restrain TRAIL-mediated excitotoxicity caused by Aβ1-42 oligomers
Jian Zou1, Elizabeth McNair1, Sagan DeCastro1,2
1Bowles Center for Alcohol Studies, University of North Carolina at Chapel Hill School of Medicine, Chapel Hill, NC, 27599, USA.
Background:
Alzheimer's disease (AD) features progressive neurodegeneration and microglial activation that results in dementia and cognitive decline. The release of soluble amyloid (Aβ) oligomers into the extracellular space is an early feature of AD pathology. This can promote excitotoxicity and microglial activation. Microglia can adopt several activation states with various functional outcomes. Protective microglial activation states have been identified in response to Aβ plaque pathology in vivo. However, the role of microglia and immune mediators in neurotoxicity induced by soluble Aβ oligomers is unclear. Further, there remains a need to identify druggable molecular targets that promote protective microglial states to slow or prevent the progression of AD.
Methods:
Hippocampal entorhinal brain slice culture (HEBSC) was employed to study mechanisms of Aβ1-42 oligomer-induced neurotoxicity as well as the role of microglia. The roles of glutamate hyperexcitation and immune signaling in Aβ-induced neurotoxicity were assessed using MK801 and neutralizing antibodies to the TNF-related apoptosis-inducing ligand (TRAIL) respectively. Microglial activation state was manipulated using Gi-hM4di designer receptor exclusively activated by designer drugs (DREADDs), microglial depletion with the colony-stimulating factor 1 receptor (CSF1R) antagonist PLX3397, and microglial repopulation (PLX3397 withdrawal). Proteomic changes were assessed by LC-MS/MS in microglia isolated from control, repopulated, or Aβ-treated HEBSCs.
Results:
Neurotoxicity induced by soluble Aβ1-42 oligomers involves glutamatergic hyperexcitation caused by the proinflammatory mediator and death receptor ligand TRAIL. Microglia were found to have the ability to both promote and restrain Aβ-induced toxicity. Induction of microglial Gi-signaling with hM4di to prevent pro-inflammatory activation blunted Aβ neurotoxicity, while microglial depletion with CSF1R antagonism worsened neurotoxicity caused by Aβ as well as TRAIL. HEBSCs with repopulated microglia, however, showed a near complete resistance to Aβ-induced neurotoxicity. Comparison of microglial proteomes revealed that repopulated microglia have a baseline anti-inflammatory and trophic phenotype with a predicted pathway activation that is nearly opposite that of Aβ-exposed microglia. mTORC2 and IRF7 were identified as potential targets for intervention.
Conclusion:
Microglia are key mediators of both protection and neurodegeneration in response to Aβ. Polarizing microglia toward a protective state could be used as a preventative strategy against Aβ-induced neurotoxicity.
Insights
Microglia play a dual role in Alzheimer's disease (AD) pathology, mediating both neuroprotection and neurodegeneration. Targeting microglia to promote protective states may offer a novel strategy for AD prevention.
Area of Science:
- Neuroscience
- Immunology
- Pathology
Background:
- Alzheimer's disease (AD) involves progressive neurodegeneration and microglial activation, leading to cognitive decline.
- Soluble amyloid-beta (Aβ) oligomers are early pathological features that can induce excitotoxicity and microglial activation.
- Understanding microglia's role in Aβ-induced neurotoxicity is crucial for identifying therapeutic targets.
Purpose of the Study:
- To investigate the mechanisms of Aβ oligomer-induced neurotoxicity in the hippocampus.
- To elucidate the specific roles of microglia and immune mediators in this process.
- To identify potential molecular targets for promoting protective microglial states in AD.
Main Methods:
- Utilized hippocampal entorhinal brain slice culture (HEBSC) to model Aβ oligomer toxicity.
- Assessed the roles of glutamatergic hyperexcitation and TNF-related apoptosis-inducing ligand (TRAIL) signaling.
- Manipulated microglial activation states using DREADDs, CSF1R antagonism for depletion, and repopulation.
Main Results:
- Aβ oligomer neurotoxicity is mediated by glutamatergic hyperexcitation and TRAIL.
- Microglia can both exacerbate and protect against Aβ-induced toxicity.
- Repopulated microglia exhibited resistance to Aβ neurotoxicity, displaying an anti-inflammatory and trophic phenotype.
Conclusions:
- Microglia are critical mediators in Aβ-induced neuroprotection and neurodegeneration.
- Modulating microglia towards a protective phenotype presents a potential preventative strategy for AD.
- mTORC2 and IRF7 are identified as potential therapeutic targets.
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