Related Experiment Video
Updated: Dec 15, 2025

Retinal Explant of the Adult Mouse Retina as an Ex Vivo Model for Studying Retinal Neurovascular Diseases
Published on: December 9, 2022
Angiogenic factor with G patch and FHA domains 1 protects retinal vascular endothelial cells under hyperoxia by
Guomin Yao1, Rong Li1, Junhui Du2
1Department of Ophthalmology, The First Affiliated Hospital, Xi'an Medical University, Xi'an, China.
Insights
Angiogenic factor with G patch and FHA domains 1 (AGGF1) protects retinal vascular cells from hyperoxia-induced damage. AGGF1 promotes angiogenesis and inhibits autophagy, suggesting a therapeutic role in retinopathy.
Area of Science:
- Ophthalmology
- Vascular Biology
- Cell Biology
Background:
- Retinopathy of prematurity (ROP) is a severe retinal disorder in premature infants.
- Hyperoxia arrests immature retinal vascular growth, leading to ROP.
- The role of Angiogenic factor with G patch and FHA domains 1 (AGGF1) in retinopathy is unknown.
Purpose of the Study:
- Investigate AGGF1's effects on retinal vascular endothelial cells under hyperoxia.
- Explore the association between AGGF1 and autophagy in this context.
- Determine AGGF1's potential therapeutic role in ROP.
Main Methods:
- Used rhesus macaque choroid-retinal endothelial (RF/6A) cells.
- Detected AGGF1 expression via Western blot and immunofluorescence.
- Assessed cell vitality, apoptosis, migration, and tube formation using CCK-8, flow cytometry, Transwell, and Matrigel assays.
- Analyzed autophagy markers (LC3, Beclin-1) and flux using Western blot and mCherry-GFP-LC3 adenovirus.
Main Results:
- Hyperoxia decreased AGGF1 expression in RF/6A cells.
- Hyperoxia reduced cell vitality, migration, and tube formation, while increasing apoptosis.
- AGGF1 attenuated hyperoxia-induced damage to retinal vascular endothelial cells.
- Hyperoxia enhanced autophagy flux, indicated by increased LC3 and Beclin-1.
- AGGF1 inhibited hyperoxia-induced autophagy.
Conclusions:
- Exogenous AGGF1 protects retinal vascular endothelial cells against hyperoxia.
- AGGF1 promotes angiogenesis and inhibits autophagy under hyperoxic conditions.
- Inhibition of autophagy by AGGF1 is a potential mechanism for its protective effects in retinopathy.
Abstract:
Angiogenic factor with G patch and FHA domains 1 (AGGF1) has strong proangiogenic effects on embryonic vascular development and angiogenesis in disease; however, its role in retinopathy has not been elucidated. Retinopathy of prematurity is a serious retinal disorder of premature infants, which is caused by the arrest of immature retinal vascular growth under hyperoxia. This study aims to investigate the effects of AGGF1 on retinal vascular endothelial cells under hyperoxia and the association with autophagy by using rhesus macaque choroid-retinal endothelial (RF/6A) cells. Western blot analysis and immunofluorescence staining were used to detect the expression of AGGF1 in RF/6A cells. Cell Counting Kit-8, flow cytometry, and transwell and matrigel assays were applied to detect the vitality, apoptosis, migration, and tube formation of RF/6A cells, respectively. Western blot analysis was then used to detect the expression of autophagy markers LC3 and Beclin-1, and mCherry-GFP-LC3 adenovirus was used to detect autophagy flux in RF/6A cells. Under hyperoxia, the expression of AGGF1 in RF/6A cells decreased compared with the control. Cell vitality, migration, and tube formation decreased, and apoptosis of RF/6A cells increased under hyperoxia, and these effects of hyperoxia were attenuated by AGGF1. The protein expressions of LC3 and Beclin-1 increased in RF/6A cells and autophagy flux enhanced under hyperoxia. AGGF1 reduced the expression of LC3 and Beclin-1 as well as the autophagy flux stimulated by hyperoxia. The results clearly showed that exogenous AGGF1 can protect retinal vascular endothelial cells and promote angiogenesis under hyperoxia, in which the expression of AGGF1 was inhibited. Inhibition of autophagy by AGGF1 may be one of the mechanisms involved.
More Related Videos
Related Concept Videos
Regulation of Angiogenesis and Blood Supply
Mechanism of Angiogenesis

