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Three-dimensional Confocal Analysis of Microglia/macrophage Markers of Polarization in Experimental Brain Injury
Published on: September 4, 2013
Immature monocytes recruited to the ischemic mouse brain differentiate into macrophages with features of alternative
Francesc Miró-Mur1, Isabel Pérez-de-Puig2, Maura Ferrer-Ferrer2
1Àrea de Neurociències, Institut d'Investigacions Biomèdiques August Pi i Sunyer (IDIBAPS), 08036 Barcelona, Spain.
Abstract:
Acute stroke induces a local inflammatory reaction causing leukocyte infiltration. Circulating monocytes are recruited to the ischemic brain and become tissue macrophages morphologically indistinguishable from reactive microglia. However, monocytes are a heterogeneous population of cells with different functions. Herein, we investigated the infiltration and fate of the monocyte subsets in a mouse model of focal brain ischemia by permanent occlusion of the distal portion of the middle cerebral artery. We separated two main subtypes of CD11b(hi) monocytes according to their expression of the surface markers Ly6C and CD43. Using adoptive transfer of reporter monocytes and monocyte depletion, we identified the pro-inflammatory Ly6C(hi)CD43(lo)CCR2(+) subset as the predominant monocytes recruited to the ischemic tissue. Monocytes were seen in the leptomeninges from where they entered the cortex along the penetrating arterioles. Four days post-ischemia, they had invaded the infarcted core, where they were often located adjacent to blood vessels. At this time, Iba-1(-) and Iba-1(+) cells in the ischemic tissue incorporated BrdU, but BrdU incorporation was rare in the reporter monocytes. The monocyte phenotype progressively changed by down-regulating Ly6C, up-regulating F4/80, expressing low or intermediate levels of Iba-1, and developing macrophage morphology. Moreover, monocytes progressively acquired the expression of typical markers of alternatively activated macrophages, like arginase-1 and YM-1. Collectively, the results show that stroke mobilized immature pro-inflammatory Ly6C(hi)CD43(lo) monocytes that acutely infiltrated the ischemic tissue reaching the core of the lesion. Monocytes differentiated to macrophages with features of alternative activation suggesting possible roles in tissue repair during the sub-acute phase of stroke.
Insights
Acute stroke recruits specific pro-inflammatory monocytes (Ly6C-hi) to the brain. These cells transform into alternatively activated macrophages, potentially aiding tissue repair in the sub-acute phase.
Area of Science:
- Neuroimmunology
- Stroke Pathophysiology
Background:
- Acute stroke triggers brain inflammation with leukocyte infiltration.
- Monocytes are recruited to the ischemic brain, differentiating into macrophages.
- Monocyte subsets exhibit diverse functions crucial for understanding stroke pathology.
Purpose of the Study:
- To investigate the infiltration dynamics and differentiation of monocyte subsets in focal brain ischemia.
- To identify the specific monocyte subset predominantly recruited to the ischemic brain tissue.
- To characterize the phenotypic and functional changes of infiltrating monocytes post-stroke.
Main Methods:
- Established a mouse model of focal brain ischemia via middle cerebral artery occlusion.
- Utilized adoptive transfer of reporter monocytes and monocyte depletion strategies.
- Analyzed monocyte subset populations based on Ly6C and CD43 surface marker expression.
Main Results:
- The pro-inflammatory Ly6C(hi)CD43(lo)CCR2(+) monocyte subset was the primary infiltrator of ischemic brain tissue.
- Infiltrating monocytes migrated from leptomeninges into the cortex and infarcted core.
- Monocytes underwent phenotypic changes, downregulating Ly6C and upregulating F4/80, adopting alternatively activated macrophage markers (arginase-1, YM-1).
Conclusions:
- Stroke mobilizes immature, pro-inflammatory monocytes that infiltrate the ischemic core.
- These infiltrating monocytes differentiate into alternatively activated macrophages, suggesting a role in sub-acute stroke tissue repair.

