Related Experiment Video
Updated: Oct 26, 2025

Isolation and Flow Cytometric Assessment of Neuroimmune Interactions in a Mini-Stroke Murine Model
Published on: June 20, 2025
High-parameter cytometry unmasks microglial cell spatio-temporal response kinetics in severe neuroinflammatory
Alanna G Spiteri1,2, Rachel L Terry1,2,3,4, Claire L Wishart1,2
1Discipline of Pathology, Faculty of Medicine and Health, School of Medical Sciences, The University of Sydney, Sydney, Australia.
Background:
Differentiating infiltrating myeloid cells from resident microglia in neuroinflammatory disease is challenging, because bone marrow-derived inflammatory monocytes infiltrating the inflamed brain adopt a 'microglia-like' phenotype. This precludes the accurate identification of either cell type without genetic manipulation, which is important to understand their temporal contribution to disease and inform effective intervention in its pathogenesis. During West Nile virus (WNV) encephalitis, widespread neuronal infection drives substantial CNS infiltration of inflammatory monocytes, causing severe immunopathology and/or death, but the role of microglia in this remains unclear.
Methods:
Using high-parameter cytometry and dimensionality-reduction, we devised a simple, novel gating strategy to identify microglia and infiltrating myeloid cells during WNV-infection. Validating our strategy, we (1) blocked the entry of infiltrating myeloid populations from peripheral blood using monoclonal blocking antibodies, (2) adoptively transferred BM-derived monocytes and tracked their phenotypic changes after infiltration and (3) labelled peripheral leukocytes that infiltrate into the brain with an intravenous dye. We demonstrated that myeloid immigrants populated only the identified macrophage gates, while PLX5622 depletion reduced all 4 subsets defined by the microglial gates.
Results:
Using this gating approach, we identified four consistent microglia subsets in the homeostatic and WNV-infected brain. These were P2RY12hi CD86-, P2RY12hi CD86+ and P2RY12lo CD86- P2RY12lo CD86+. During infection, 2 further populations were identified as 'inflammatory' and 'microglia-like' macrophages, recruited from the bone marrow. Detailed kinetic analysis showed significant increases in the proportions of both P2RY12lo microglia subsets in all anatomical areas, largely at the expense of the P2RY12hi CD86- subset, with the latter undergoing compensatory proliferation, suggesting replenishment of, and differentiation from this subset in response to infection. Microglia altered their morphology early in infection, with all cells adopting temporal and regional disease-specific phenotypes. Late in disease, microglia produced IL-12, downregulated CX3CR1, F4/80 and TMEM119 and underwent apoptosis. Infiltrating macrophages expressed both TMEM119 and P2RY12 de novo, with the microglia-like subset notably exhibiting the highest proportional myeloid population death.
Conclusions:
Our approach enables detailed kinetic analysis of resident vs infiltrating myeloid cells in a wide range of neuroinflammatory models without non-physiological manipulation. This will more clearly inform potential therapeutic approaches that specifically modulate these cells.
Insights
Researchers developed a novel method to distinguish between brain-resident microglia and infiltrating myeloid cells during neuroinflammation. This technique aids in understanding cell roles in diseases like West Nile virus encephalitis.
Area of Science:
- Neuroimmunology
- Cellular Biology
- Virology
Background:
- Distinguishing resident microglia from infiltrating myeloid cells in neuroinflammation is challenging due to phenotype mimicry.
- Understanding these cell populations is crucial for neuroinflammatory disease pathogenesis and therapeutic interventions.
- West Nile virus (WNV) encephalitis involves significant myeloid cell infiltration, but microglia's role remains unclear.
Purpose of the Study:
- To develop a novel gating strategy for differentiating microglia and infiltrating myeloid cells in the context of neuroinflammation.
- To kinetically analyze the roles and phenotypic changes of these myeloid populations during West Nile virus (WNV) encephalitis.
Main Methods:
- High-parameter cytometry and dimensionality reduction were employed to create a novel gating strategy.
- The strategy was validated by blocking myeloid cell entry, adoptive transfer of monocytes, and intravenous labeling of infiltrating leukocytes.
- PLX5622 depletion was used to assess the impact on microglial subsets.
Main Results:
- Four distinct microglia subsets were identified in homeostatic and WNV-infected brains.
- Two infiltrating myeloid populations, 'inflammatory' and 'microglia-like' macrophages, were identified.
- Microglia subsets (P2RY12lo) increased during infection, while P2RY12hi CD86- subsets proliferated; microglia underwent phenotypic changes, apoptosis, and expressed IL-12.
- Infiltrating macrophages expressed TMEM119 and P2RY12 de novo, with microglia-like macrophages showing higher death rates.
Conclusions:
- The developed approach allows for detailed kinetic analysis of resident versus infiltrating myeloid cells in neuroinflammatory models without artificial manipulation.
- This method provides a clearer understanding for developing targeted therapeutic strategies modulating specific myeloid cell populations in neuroinflammation.
More Related Videos
12:48In Vivo Dynamics of Retinal Microglial Activation During Neurodegeneration: Confocal Ophthalmoscopic Imaging and Cell Morphometry in Mouse Glaucoma
Published on: May 11, 2015
13:36Detection of MicroRNAs in Microglia by Real-time PCR in Normal CNS and During Neuroinflammation
Published on: July 23, 2012