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Assessing Retinal Microglial Phagocytic Function In Vivo Using a Flow Cytometry-based Assay
Published on: October 18, 2016
Microglia activation and phagocytosis: relationship with aging and cognitive impairment in the rhesus monkey
Eli Shobin1,2, Michael P Bowley3, Larissa I Estrada4,5
1Department of Anatomy and Neurobiology, Boston University, Boston, MA, 02118, USA. eshobin@bu.edu.
Abstract:
While cognitive decline is observed in the normal aging monkey, neurons are not lost with age. Instead, frontal white matter is lost as myelin degenerates and both correlate with age-related cognitive decline. As age-related myelin damage increases, there should be an increase in clearance of damaged myelin by microglial phagocytosis. In this study, brains of behaviorally tested rhesus monkeys were assessed using unbiased stereology to quantify the density of activated microglia (LN3 antibody positive) and phagocytic microglia (galectin-3 (Gal-3) antibody positive) in three white matter regions: the corpus callosum, cingulum bundle (CGB), and frontal white matter (FWM). LN3 cell density was significantly increased in the CGB, whereas Gal-3 cell density was significantly increased in all regions. Increases in Gal-3 cell density in the FWM were associated with cognitive impairment. In the FWM of old animals, Gal-3-positive microglia were classified by morphological subtype as ramified, hypertrophic, or amoeboid. The densities of hypertrophic and amoeboid microglia significantly correlated with cognitive impairment. Finally, microglia were double-labeled with LN3 and Gal-3 showing that 91% of Gal-3 cells were also LN3 positive, thus expressing an "activated" phenotype. Furthermore, 15% of all double-labeled cells formed phagocytic cups. Overall, these results suggest that microglia become activated in white matter with age where the majority express a phagocytic phenotype. We hypothesize that age-related phagocytic activation of microglia is a response to accumulating myelin pathology. The association of Gal-3 in the FWM with cognitive impairment may reflect regional differences in damage or dysfunction of normal clearance mechanisms.
Insights
Aging monkeys show cognitive decline linked to white matter myelin loss, not neuron loss. Activated, phagocytic microglia increase in white matter, clearing damaged myelin and correlating with cognitive impairment.
Area of Science:
- Neuroscience
- Aging Research
- Immunology
Background:
- Cognitive decline in aging is linked to white matter changes, specifically myelin degeneration.
- Microglia are immune cells in the brain that clear cellular debris, including damaged myelin.
- Increased microglial phagocytosis is expected with age-related myelin damage.
Purpose of the Study:
- To investigate microglial activation and phagocytosis in aging rhesus monkey brains.
- To correlate microglial activity in white matter with cognitive function.
- To understand the role of microglia in age-related white matter pathology.
Main Methods:
- Unbiased stereology used to quantify microglia (LN3 and galectin-3 positive) in corpus callosum, cingulum bundle, and frontal white matter.
- Behavioral testing of rhesus monkeys to assess cognitive function.
- Morphological classification of microglia and double-labeling techniques to assess activation and phagocytosis.
Main Results:
- Galectin-3 positive microglia (phagocytic) increased significantly in all white matter regions studied.
- Increased galectin-3 density in frontal white matter correlated with cognitive impairment.
- Hypertrophic and amoeboid microglia subtypes in frontal white matter also correlated with cognitive impairment.
- Most galectin-3 positive microglia were also LN3 positive (activated), with 15% forming phagocytic cups.
Conclusions:
- Microglia are activated in aged white matter, predominantly exhibiting a phagocytic phenotype.
- This microglial activation is likely a response to accumulating myelin damage.
- Frontal white matter microglial activity, particularly galectin-3 expression, is associated with age-related cognitive decline, suggesting regional differences in myelin clearance.

