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Updated: May 11, 2026

An Ex Vivo Explant Model for Studying Glial Interactions in the Mouse Retina
Published on: July 15, 2025
Biomechanical properties of retinal glial cells: comparative and developmental data
Yun-Bi Lu1, Thomas Pannicke, Er-Qing Wei
1Division of Soft Matter Physics, Department of Physics, Universität Leipzig, Linnéstr. 5, D-04103 Leipzig, Germany.
Abstract:
The biomechanical properties of Müller glial cells may have importance in understanding the retinal tissue alterations after retinal surgery with removal of the inner limiting membrane and during the ontogenetic development, respectively. Here, we compared the viscoelastic properties of Müller cells from man and monkey as well as from different postnatal developmental stages of the rat. We determined the complex Young's modulus E = E' + iE″ in a defined range of deforming frequencies (30, 100, and 200 Hz) using a scanning force microscope, where the real part E' reflects the elastic property (energy storage or elastic stiffness) and the imaginary part E″ reflects the viscous property (energy dissipation) of the cells. The viscoelastic properties were similar in Müller cells from man, monkey, and rat. In general, the elastic behavior dominated over the viscous behavior (E' > E″). The inner process of the Müller cell was the softest region, the soma the stiffest (Einnerprocess(')
Insights
Müller glial cells exhibit elastic solid-like mechanics, crucial for retinal surgery and development. Rodent retinas effectively model these biomechanical properties for research.
Area of Science:
- Ophthalmology
- Biophysics
- Cell Biology
Background:
- Müller glial cells are vital in retinal structure and function.
- Understanding their biomechanics is key for retinal surgery outcomes and development.
- Inner limiting membrane removal impacts retinal tissue.
Purpose of the Study:
- Compare viscoelastic properties of Müller cells across species (human, monkey, rat).
- Investigate changes in Müller cell mechanics during postnatal development in rats.
- Relate Müller cell biomechanics to retinal tissue alterations and development.
Main Methods:
- Used scanning force microscopy to measure complex Young's modulus (E' + iE″).
- Tested cells at varying deforming frequencies (30, 100, 200 Hz).
- Compared viscoelastic properties of different Müller cell regions and neuronal somata.
Main Results:
- Viscoelastic properties were consistent across human, monkey, and rat Müller cells.
- Elastic behavior predominated over viscous behavior (E' > E″).
- Stiffness varied: inner process < endfoot < soma; neuronal somata > glial somata.
Conclusions:
- Retinal cells generally behave as elastic solids.
- Rodent retinas serve as reliable models for retinal mechanics and post-surgery studies.
- Müller cell viscoelasticity may influence neuronal branching and synaptogenesis during development.

