Related Experiment Video
Updated: Dec 13, 2025

Establishing a Severe Corneal Inflammation Model in Rats Based on Corneal Epithelium Curettage Combined with Corneal Sutures
Published on: November 22, 2024
Autophagy modulation in animal models of corneal diseases: a systematic review
Guadalupe Martínez-Chacón1,2,3,4, Francisco Javier Vela5, José Luis Campos5
1Department of Microsurgery, Jesús Usón Minimally Invasive Surgery Centre, 10071, Cáceres, Spain. gmartinezchacon@gmail.com.
Abstract:
Autophagy is an intracellular catabolic process implicated in the recycling and degradation of intracellular components. Few studies have defined its role in corneal pathologies. Animal models are essential for understanding autophagy regulation and identifying new treatments to modulate its effects. A systematic review (SR) was conducted of studies employing animal models for investigations of autophagy in corneal diseases. Studies were identified using a structured search strategy (TS = autophagy AND cornea*) in Web of Science, Scopus, and PubMed from inception to September 2019. In this study, 230 articles were collected, of which 28 were analyzed. Mouse models were used in 82% of the studies, while rat, rabbit, and newt models were used in the other 18%. The most studied corneal layer was the epithelium, followed by the endothelium and stroma. In 13 articles, genetically modified animal models were used to study Fuch endothelial corneal dystrophy (FECD), granular corneal dystrophy type 2 (GCD2), dry eye disease (DED), and corneal infection. In other 13 articles, animal models were experimentally induced to mimic DED, keratitis, inflammation, and surgical scenarios. Furthermore, in 50% of studies, modulators that activated or inhibited autophagy were also investigated. Protective effects of autophagy activators were demonstrated, including rapamycin for DED and keratitis, lithium for FECD, LYN-1604 for DED, cysteamine and miR-34c antagomir for damaged corneal epithelium. Three autophagy suppressors were also found to have therapeutic effects, such as aminoimidazole-4-carboxamide-riboside (AICAR) for corneal allogeneic transplantation, celecoxib and chloroquine for DED.
Insights
Animal models reveal autophagy
Area of Science:
- Ophthalmology
- Cell Biology
Background:
- Autophagy, an intracellular process for component recycling, has a poorly defined role in corneal diseases.
- Animal models are crucial for understanding autophagy regulation and developing targeted therapies for corneal conditions.
Purpose of the Study:
- To systematically review studies using animal models to investigate autophagy in corneal diseases.
- To identify current research trends, common animal models, and therapeutic strategies involving autophagy modulation for corneal pathologies.
Main Methods:
- A systematic review of literature was performed using keywords 'autophagy' and 'cornea*' in Web of Science, Scopus, and PubMed.
- 28 relevant articles were analyzed from an initial collection of 230 studies, focusing on animal models of corneal diseases.
Main Results:
- Mouse models predominated (82%), with studies examining epithelium, endothelium, and stroma.
- Genetically modified and experimentally induced models mimicked conditions like Fuch endothelial corneal dystrophy, dry eye disease, and keratitis.
- Autophagy modulators, including activators (e.g., rapamycin, lithium) and suppressors (e.g., AICAR, chloroquine), showed therapeutic potential in various corneal diseases.
Conclusions:
- Animal models are instrumental in advancing the understanding of autophagy's role in corneal pathologies.
- Modulating autophagy presents a promising therapeutic avenue for treating diverse corneal diseases, warranting further investigation.

