Related Experiment Video
Updated: Jul 16, 2025

An Ex Vivo Tissue Culture Model for Fibrovascular Complications in Proliferative Diabetic Retinopathy
Published on: January 25, 2019
Macrophage-Myofibroblast Transition Contributes to Myofibroblast Formation in Proliferative Vitreoretinal Disorders
Ahmed M Abu El-Asrar1,2, Gert De Hertogh3,4, Eef Allegaert3,4
1Department of Ophthalmology, College of Medicine, King Saud University, Riyadh 11411, Saudi Arabia.
Abstract:
Inflammation and fibrosis are key features of proliferative vitreoretinal disorders. We aimed to define the macrophage phenotype and investigate the role of macrophage-myofibroblast transition (MMT) in the contribution to myofibroblast populations present in epiretinal membranes. Vitreous samples from proliferative diabetic retinopathy (PDR), proliferative vitreoretinopathy (PVR) and nondiabetic control patients, epiretinal fibrovascular membranes from PDR patients and fibrocellular membranes from PVR patients, human retinal Müller glial cells and human retinal microvascular endothelial cells (HRMECs) were studied by ELISA, immunohistochemistry and flow cytometry analysis. Myofibroblasts expressing α-SMA, fibroblast activation protein-α (FAP-α) and fibroblast-specific protein-1 (FSP-1) were present in all membranes. The majority of CD68+ monocytes/macrophages co-expressed the M2 macrophage marker CD206. In epiretinal membranes, cells undergoing MMT were identified by co-expression of the macrophage marker CD68 and myofibroblast markers α-SMA and FSP-1. Further analysis revealed that CD206+ M2 macrophages co-expressed α-SMA, FSP-1, FAP-α and ß-catenin. Soluble (s) CD206 and sFAP-α levels were significantly higher in vitreous samples from PDR and PVR patients than in nondiabetic control patients. The proinflammatory cytokine TNF-α and the hypoxia mimetic agent cobalt chloride induced upregulation of sFAP-α in culture media of Müller cells but not of HRMECs. The NF-ĸß inhibitor BAY11-7085 significantly attenuated TNF-α-induced upregulation of sFAP-α in Müller cells. Our findings suggest that the process of MMT might contribute to myofibroblast formation in epiretinal membranes, and this transition involved macrophages with a predominant M2 phenotype. In addition, sFAP-α as a vitreous biomarker may be derived from M2 macrophages transitioned to myofibroblasts and from Müller cells.
Insights
Macrophage-myofibroblast transition (MMT) contributes to myofibroblast populations in epiretinal membranes, particularly involving M2 macrophages. Soluble FAP-α may serve as a biomarker in proliferative vitreoretinal disorders.
Area of Science:
- Ophthalmology
- Cell Biology
- Immunology
Background:
- Proliferative vitreoretinal disorders feature inflammation and fibrosis.
- Myofibroblasts are key cellular components of epiretinal membranes.
Purpose of the Study:
- To define macrophage phenotype in epiretinal membranes.
- To investigate the role of macrophage-myofibroblast transition (MMT) in myofibroblast formation.
Main Methods:
- ELISA, immunohistochemistry, and flow cytometry on vitreous samples and epiretinal membranes.
- Analysis of human retinal Müller glial cells and microvascular endothelial cells (HRMECs).
Main Results:
- Myofibroblasts expressing α-SMA, FAP-α, and FSP-1 were identified in membranes.
- CD68+ monocytes/macrophages predominantly expressed the M2 marker CD206.
- MMT cells co-expressed macrophage and myofibroblast markers; M2 macrophages expressed α-SMA, FSP-1, FAP-α, and ß-catenin.
- Elevated vitreous sCD206 and sFAP-α in PDR and PVR patients.
- TNF-α and cobalt chloride upregulated sFAP-α in Müller cells, inhibited by BAY11-7085.
Conclusions:
- MMT contributes to myofibroblast populations in epiretinal membranes, involving M2 macrophages.
- Vitreous sFAP-α may be a biomarker derived from M2 macrophages undergoing MMT and from Müller cells.
More Related Videos
11:20Retinal Pigment Epithelium Transplantation in a Non-human Primate Model for Degenerative Retinal Diseases
Published on: June 14, 2021
10:14Author Spotlight: Ex Vivo OCT-Based Multimodal Imaging of Human Donor Eyes for Research into Age-Related Macular Degeneration
Published on: May 26, 2023