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Updated: Aug 4, 2026

Correlative Light and Electron Microscopy to Study Microglial Interactions with β-Amyloid Plaques
Published on: June 1, 2016
Microglia depletion rapidly and reversibly alters amyloid pathology by modification of plaque compaction and
Brad T Casali1, Kathryn P MacPherson2, Erin G Reed-Geaghan3
1Department of Neurosciences, Case Western Reserve University, School of Medicine, Cleveland, OH 44106, USA; Stark Neurosciences Research Institute, Indiana University, School of Medicine, Indianapolis, IN 46202, USA.
Abstract:
Alzheimer's disease (AD) is a prominent neurodegenerative disorder characterized by deposition of β-amyloid (Aβ)-containing extracellular plaques, accompanied by a microglial-mediated inflammatory response, that leads to cognitive decline. Microglia perform many disease-modifying functions such as phagocytosis of plaques, plaque compaction, and modulation of inflammation through the secretion of cytokines. Microglia are reliant upon colony-stimulating factor receptor-1 (CSF1R) activation for survival. In AD mouse models, chronic targeted depletion of microglia via CSF1R antagonism attenuates plaque formation in early disease but fails to alter plaque burden in late disease. It is unclear if acute depletion of microglia during the peak period of plaque deposition will alter disease pathogenesis, and if so, whether these effects are reversible upon microglial repopulation. To test this, we administered the CSF1R antagonist PLX5622 to the 5XFAD mouse model of AD at four months of age for approximately one month. In a subset of mice, the drug treatment was discontinued, and the mice were fed a control diet for an additional month. We evaluated plaque burden and composition, microgliosis, inflammatory marker expression, and neuritic dystrophy. In 5XFAD animals, CSF1R blockade for 28 days depleted microglia across brain regions by over 50%, suppressed microgliosis, and reduced plaque burden. In microglial-depleted AD animals, neuritic dystrophy was enhanced, and increased diffuse-like plaques and fewer compact-like plaques were observed. Removal of PLX5622 elicited microglial repopulation and subsequent plaque remodeling, resulting in more compact plaques predominating microglia-repopulated regions. We found that microglia limit diffuse plaques by maintaining compact-like plaque properties, thereby blocking the progression of neuritic dystrophy. Microglial repopulation reverses these effects. Collectively, we show that microglia are neuroprotective through maintenance of plaque compaction and morphologies during peak disease progression.
Insights
Microglia protect the brain in Alzheimer's disease by compacting amyloid plaques. Depleting microglia worsens disease, but their return helps remodel plaques and offers neuroprotection.
Area of Science:
- Neuroscience
- Immunology
- Pathology
Background:
- Alzheimer's disease (AD) involves amyloid-beta plaques and neuroinflammation driven by microglia.
- Microglia, crucial for brain health, rely on CSF1R for survival and perform plaque clearance and inflammation modulation.
- Previous studies show chronic microglial depletion impacts early AD but not late-stage plaque burden.
Purpose of the Study:
- To investigate the effects of acute microglial depletion during peak plaque deposition in a mouse model of Alzheimer's disease.
- To determine if these effects are reversible upon microglial repopulation.
Main Methods:
- Administered CSF1R antagonist PLX5622 to 5XFAD mice at 4 months of age for 28 days.
- Discontinued PLX5622 in a subset of mice for an additional month to allow microglial repopulation.
- Evaluated plaque burden, composition, microgliosis, inflammation, and neuritic dystrophy.
Main Results:
- CSF1R blockade depleted microglia by over 50%, suppressed microgliosis, and reduced overall plaque burden.
- Microglial depletion enhanced neuritic dystrophy and shifted plaque composition towards diffuse plaques.
- PLX5622 withdrawal led to microglial repopulation and remodeling of plaques into more compact forms.
Conclusions:
- Microglia play a neuroprotective role in Alzheimer's disease by maintaining plaque compaction during peak disease progression.
- This compaction limits diffuse plaque formation and prevents the exacerbation of neuritic dystrophy.
- Microglial repopulation can reverse detrimental effects, highlighting their dynamic and beneficial role.
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