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Updated: Apr 27, 2026

Isolation of Cortical Microglia with Preserved Immunophenotype and Functionality From Murine Neonates
Published on: January 30, 2014
Resting microglia react to Aβ42 fibrils but do not detect oligomers or oligomer-induced neuronal damage
Denise Ferrera1, Nadia Mazzaro1, Claudio Canale2
1Department of Neuroscience and Brain Technologies, Istituto Italiano di Tecnologia, Genova, Italy.
Abstract:
In Alzheimer's disease (AD), amyloid-β (Aβ) deposits accumulate in the brain parenchyma and contain fibrils of aggregated heterogeneous Aβ peptides. In addition to fibrils, Aβ aggregates into stable soluble species (termed Aβ oligomers), which are increasingly viewed as the key drivers of early neurodegenerative events in AD. Aβ aggregates stimulate microglia recruitment and activation. In the AD brain, microglia surround Aβ deposits, activate, and abnormally produce inflammatory mediators, contributing to AD pathogenesis. However, it remains unclear to which of the conformationally diverse Aβ species microglia specifically react. Here, we explore the "sensor" capability of murine microglia. We examine whether they can detect and discriminate the toxic Aβ oligomers, Aβ fibrils, and Aβ-induced neuronal damage and investigate whether they are activated by diverse human Aβ species cell autonomously or through neuron-derived factors. We find that, on aggregation in vitro, Aβ42 peptides form stable oligomers and fibrils, which are neurotoxic and trigger dendritic spine loss in mature primary mouse hippocampal neurons. Further, in resting primary murine microglia, Aβ42 fibrils induce a pattern of expression of inflammatory genes typical of the classical inflammatory response induced by infectious agents (e.g., the bacterial toxin lipopolysaccharide). Conversely, Aβ42 oligomers never elicit a microglia inflammatory response, whether applied alone, in combination with neuron-derived secreted factors, or in contact with neurons. Thus, microglia strongly react to Aβ42 fibrils, but do not sense Aβ oligomers or oligomer-induced neuronal damage. This suggests that early neurotoxic species can escape detection by microglia, leading to the chronic unfolding of amyloid pathology in AD.
Insights
Microglia respond to amyloid-beta (Aβ) fibrils in Alzheimer's disease (AD) but not toxic Aβ oligomers. This suggests early neurotoxic species may evade microglial detection, allowing amyloid pathology to progress unchecked.
Area of Science:
- Neuroscience
- Immunology
- Cell Biology
Background:
- Alzheimer's disease (AD) involves amyloid-beta (Aβ) accumulation, including fibrils and soluble oligomers.
- Microglia, the brain's immune cells, are activated in AD but their specific responses to different Aβ species are unclear.
Purpose of the Study:
- To investigate if murine microglia can detect and differentiate between toxic Aβ oligomers and Aβ fibrils.
- To determine if microglia activation is triggered by Aβ species directly or via neuron-derived factors.
Main Methods:
- In vitro aggregation of Aβ42 peptides into oligomers and fibrils.
- Assessment of neurotoxicity and dendritic spine loss in primary mouse hippocampal neurons.
- Analysis of inflammatory gene expression in primary murine microglia exposed to Aβ species.
Main Results:
- Aβ42 fibrils, but not oligomers, induced neurotoxicity and dendritic spine loss in neurons.
- Aβ42 fibrils triggered a classical inflammatory gene expression pattern in microglia.
- Aβ42 oligomers did not elicit an inflammatory response in microglia, even with neuron-derived factors.
Conclusions:
- Microglia effectively detect and respond to Aβ fibrils, but fail to recognize toxic Aβ oligomers.
- This lack of recognition for early toxic species may contribute to the chronic progression of Alzheimer's disease pathology.

