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Digestion of Whole Mouse Eyes for Multi-Parameter Flow Cytometric Analysis of Mononuclear Phagocytes
Published on: June 17, 2020
Identification of different macrophage subpopulations with distinct activities in a mouse model of oxygen-induced
Yanji Zhu1, Ling Zhang2, Qing Lu1
1Department of Ophthalmology, Ruijin Hospital, Shanghai Jiaotong University School of Medicine, Shanghai 200025, P.R. China.
Abstract:
The aim of the present study was to characterize the phenotypic shift, quantity and role changes in different subgroups of retinal macrophages in a mouse model of oxygen-induced retinopathy (OIR). The mRNA expression levels of macrophage M1 and M2 subgroup marker genes and polarization-associated genes were analyzed by RT-qPCR. The number of M1 and M2 macrophages in our mouse model of OIR was analyzed by flow cytometry at different time points during the progression of OIR. Immunofluorescence whole mount staining of the retinas of mice with OIR was performed at different time points to examine the influx of macrophages, as well as the morphological characteristics and roles of M1 and M2 macrophages. An increased number of macrophages was recruited during the progression of angiogenesis in the retinas of mice with OIR due to the pro-inflammatory microenvironment containing high levels of cell adhesion and leukocyte transendothelial migration molecules. RT-qPCR and flow cytometric analysis at different time points revealed a decline in the number of M1 cells from a significantly high level at post-natal day (P)13 to a relatively normal level at P21, as well as an increase in the number of M2 cells from P13 to P21 in the mice with OIR, implicating a shift of macrophage polarization towards the M2 subtype. Immunofluorescence staining suggested that the M1 cells interacted with endothelial tip cells at the vascular front, while M2 cells embraced the emerging vessels and bridged the neighboring vessel sprouts. Thus, our data indicate that macrophages play an active role in OIR by contributing to the different steps of neovascularization. Our findings indicate that tissue macrophages may be considered as a potential target for the anti-angiogenic therapy of ocular neovascularization disease.
Insights
In oxygen-induced retinopathy (OIR), retinal macrophages shift from M1 to M2 subtypes, aiding neovascularization. This macrophage polarization suggests a potential therapeutic target for ocular neovascularization diseases.
Area of Science:
- Ophthalmology
- Immunology
- Cell Biology
Background:
- Oxygen-induced retinopathy (OIR) is a significant cause of vision impairment, characterized by abnormal retinal neovascularization.
- Retinal macrophages play a complex role in ocular diseases, with distinct subgroups (M1 and M2) exhibiting different functions.
- Understanding macrophage polarization dynamics is crucial for developing targeted therapies for neovascularization.
Purpose of the Study:
- To investigate the phenotypic shift, quantity, and functional roles of M1 and M2 retinal macrophage subgroups in a mouse model of OIR.
- To analyze changes in macrophage polarization during OIR progression and their involvement in neovascularization.
Main Methods:
- Quantitative analysis of M1 and M2 macrophage markers using RT-qPCR.
- Flow cytometry to quantify M1 and M2 macrophage populations at various OIR stages.
- Immunofluorescence staining to visualize macrophage infiltration, morphology, and interactions with retinal vasculature.
Main Results:
- Increased macrophage recruitment in OIR retinas, driven by a pro-inflammatory microenvironment.
- A significant shift in macrophage polarization from M1 to M2 subtypes observed from post-natal day 13 to 21 in OIR mice.
- M1 macrophages interacted with vascular tip cells, while M2 macrophages supported emerging vessel growth and anastomosis.
Conclusions:
- Macrophages actively contribute to neovascularization in OIR through distinct M1 and M2 functions.
- The observed macrophage polarization shift highlights their dynamic role in the pathogenesis of OIR.
- Tissue macrophages represent a potential therapeutic target for anti-angiogenic strategies in ocular neovascularization.

