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Updated: Jun 26, 2025

Isolation of Primary Mouse Retinal Glial Müller Cells
Published on: August 30, 2024
Exploring the role of Müller cells-derived exosomes in diabetic retinopathy
Mohamed S Gad1, Nehal M Elsherbiny2, Dalia R El-Bassouny3
1Eye Research Institute, Oakland University, Rochester, MI 48309-4479, USA; Eye Research Center (OUWB)/ERC, William Beaumont School of Medicine, Royal Oak, MI 48309-4479, USA; Medical Histology and Cell Biology, Faculty of Medicine, Mansoura University, Egypt.
Abstract:
Exosomes are nanosized vesicles that have been reported as cargo-delivering vehicles between cells. Müller cells play a crucial role in the pathogenesis of diabetic retinopathy (DR). Activated Müller cells in the diabetic retina mediate disruption of barrier integrity and neovascularization. Endothelial cells constitute the inner blood-retinal barrier (BRB). Herein, we aim to evaluate the effect of Müller cell-derived exosomes on endothelial cell viability and barrier function under normal and hyperglycemic conditions. Müller cell-derived exosomes were isolated and characterized using Western blotting, nanoparticle tracking, and electron microscopy. The uptake of Müller cells-derived exosomes by the human retinal endothelial cells (HRECs) was monitored by labeling exosomes with PKH67. Endothelial cell vitality after treatment by exosomes under normo- and hypoglycemic conditions was checked by MTT assay and Western blot for apoptotic proteins. The barrier function of HRECs was evaluated by analysis of ZO-1 and transcellular electrical resistance (TER) using ECIS. Additionally, intracellular Ca+2 in HRECs was assessed by spectrofluorimetry. Analysis of the isolated exosomes showed a non-significant change in the number of exosomes isolated from both normal and hyperglycemic condition media, however, the average size of exosomes isolated from the hyperglycemic group showed a significant rise when compared to that of the normoglycemic group. Müller cells derived exosomes from hyperglycemic condition media markedly reduced HRECs cell count, increased caspase-3 and Annexin V, decreased ZO-1 levels and TER, and increased intracellular Ca+ when compared to other groups. However, treatment of HRECs under hyperglycemia with normo-glycemic Müller cells-derived exosomes significantly decreased cell death, preserved cellular integrity and barrier function, and reduced intracellular Ca+2. Collectively, Müller cell-derived exosomes play a remarkable role in the pathological changes associated with hyperglycemia-induced inner barrier dysfunction in DR. Further in vivo research will help in understanding the role of exosomes as therapeutic targets and/or delivery systems for DR.
Insights
Diabetic retinopathy (DR) involves Müller cell exosomes damaging retinal endothelial cells. Exosomes from normal Müller cells can protect these cells, suggesting potential therapeutic roles in DR.
Area of Science:
- Cell Biology
- Ophthalmology
- Nanomedicine
Background:
- Exosomes act as intercellular cargo carriers.
- Müller cells are implicated in diabetic retinopathy (DR) pathogenesis, contributing to barrier disruption and neovascularization.
- Endothelial cells form the inner blood-retinal barrier (BRB).
Purpose of the Study:
- To investigate the impact of Müller cell-derived exosomes on human retinal endothelial cell (HREC) viability and barrier function.
- To compare these effects under normal and hyperglycemic conditions.
Main Methods:
- Isolation and characterization of Müller cell-derived exosomes (Western blotting, nanoparticle tracking, electron microscopy).
- Assessment of exosome uptake by HRECs (PKH67 labeling).
- Evaluation of HREC viability (MTT assay, apoptotic protein analysis), barrier function (ZO-1, TER via ECIS), and intracellular calcium levels (spectrofluorimetry).
Main Results:
- Exosomes from hyperglycemic Müller cells were larger and significantly reduced HREC viability, increased apoptosis, decreased ZO-1 and TER, and elevated intracellular calcium.
- Conversely, normoglycemic Müller cell-derived exosomes protected HRECs against hyperglycemia-induced damage, preserving viability and barrier integrity.
- Exosome number was not significantly altered, but size increased under hyperglycemia.
Conclusions:
- Müller cell-derived exosomes play a significant role in hyperglycemia-induced inner BRB dysfunction in DR.
- These exosomes may serve as therapeutic targets or delivery systems for DR treatment.
- Further in vivo studies are warranted to explore their therapeutic potential.
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