Related Experiment Video
Updated: May 7, 2026

Using Adeno-associated Virus as a Tool to Study Retinal Barriers in Disease
Published on: April 19, 2015
AAV-mediated, optogenetic ablation of Müller Glia leads to structural and functional changes in the mouse retina
Leah C Byrne1, Fakhra Khalid, Trevor Lee
1Department of Molecular and Cellular Biology and The Helen Wills Neuroscience Institute, University of California, Berkeley, California, United States of America.
Abstract:
Müller glia, the primary glial cell in the retina, provide structural and metabolic support for neurons and are essential for retinal integrity. Müller cells are closely involved in many retinal degenerative diseases, including macular telangiectasia type 2, in which impairment of central vision may be linked to a primary defect in Müller glia. Here, we used an engineered, Müller-specific variant of AAV, called ShH10, to deliver a photo-inducibly toxic protein, KillerRed, to Müller cells in the mouse retina. We characterized the results of specific ablation of these cells on visual function and retinal structure. ShH10-KillerRed expression was obtained following intravitreal injection and eyes were then irradiated with green light to induce toxicity. Induction of KillerRed led to loss of Müller cells and a concomitant decrease of Müller cell markers glutamine synthetase and cellular retinaldehyde-binding protein, reduction of rhodopsin and cone opsin, and upregulation of glial fibrillary acidic protein. Loss of Müller cells also resulted in retinal disorganization, including thinning of the outer nuclear layer and the photoreceptor inner and outer segments. High resolution imaging of thin sections revealed displacement of photoreceptors from the ONL, formation of rosette-like structures and the presence of phagocytic cells. Furthermore, Müller cell ablation resulted in increased area and volume of retinal blood vessels, as well as the formation of tortuous blood vessels and vascular leakage. Electrophysiologic measures demonstrated reduced retinal function, evident in decreased photopic and scotopic electroretinogram amplitudes. These results show that loss of Müller cells can cause progressive retinal degenerative disease, and suggest that AAV delivery of an inducibly toxic protein in Müller cells may be useful to create large animal models of retinal dystrophies.
Insights
Müller cell loss in the retina causes progressive vision loss and retinal damage. This study used a novel method to ablate Müller cells, revealing their critical role in maintaining retinal structure and function.
Area of Science:
- Ophthalmology
- Neuroscience
- Cell Biology
Background:
- Müller glia are crucial for retinal integrity and neuronal support.
- Dysfunction of Müller glia is implicated in retinal degenerative diseases like macular telangiectasia type 2.
Purpose of the Study:
- To investigate the consequences of Müller cell ablation on retinal structure and visual function.
- To establish a method for Müller cell-specific ablation using an engineered adeno-associated virus (AAV) and a photo-inducible toxin.
Main Methods:
- An engineered Müller-specific AAV (ShH10) delivered the photo-inducible KillerRed protein to Müller cells in mouse retinas.
- Intravitreal injection followed by green light irradiation induced Müller cell toxicity and ablation.
- Retinal structure, visual function, and molecular markers were analyzed post-ablation.
Main Results:
- Müller cell ablation led to decreased Müller cell markers, reduced photoreceptor opsins, and increased glial fibrillary acidic protein.
- Retinal disorganization included thinning of the outer nuclear layer and photoreceptor segments.
- Vascular abnormalities such as increased vessel area, tortuosity, and leakage were observed.
- Electrophysiological tests showed reduced retinal function with decreased electroretinogram amplitudes.
Conclusions:
- Loss of Müller cells induces progressive retinal degeneration, mirroring aspects of retinal dystrophies.
- This AAV-mediated photo-inducible ablation system is a valuable tool for studying Müller glia and developing animal models for retinal diseases.

