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Updated: Aug 16, 2026

Retinal Pathophysiological Evaluation in a Rat Model
Published on: May 6, 2022
The RAGE axis in early diabetic retinopathy
Gaetano R Barile1, Sophia I Pachydaki, Samir R Tari
1Department of Ophthalmology, Mailman School of Public Health, Columbia University, New York, NY, USA. grb17@columbia.edu
Purpose:
The receptor for advanced glycation end products (AGEs) has been implicated in the pathogenesis of diabetic complications. This study was conducted to characterize the role of the RAGE axis in a murine model of nonproliferative diabetic retinopathy (NPDR).
Methods:
The retinas of hyperglycemic, hyperlipidemic (HGHL, apolipoprotein E(-/-) db/db) mice were examined for the development of early retinal vascular lesions of NPDR and compared to littermates at 6 months of age. Neural function was assessed with electroretinography. Immunohistochemistry, real-time RT-PCR, autofluorescence, and ELISA studies were used to localize and quantify the AGE/RAGE axis. Soluble RAGE, a competitor of cellular RAGE for its ligands, was administered to assess the impact of RAGE blockade.
Results:
Early inner retinal neuronal dysfunction, manifested by prolonged latencies of the oscillatory potentials and b-wave, was detected in hyperglycemic mice. HGHL mice exhibited accelerated development of acellular capillaries and pericyte ghosts compared with littermate control animals. AGEs were localized primarily to the vitreous cavity and internal limiting membrane (ILM) of the retina, where they were intimately associated with the footplates of RAGE-expressing Müller cells. AGE accumulation measured by ELISA was increased within the retinal extracellular matrix of hyperglycemic mice. AGE fluorescence and upregulation of RAGE transcripts was highest in the retinas of HGHL mice, and attenuation of the RAGE axis with soluble RAGE ameliorated neuronal dysfunction and reduced the development of capillary lesions in these mice.
Conclusions:
In early diabetic retinopathy, the RAGE axis, comprising the cellular receptor and its AGE ligands, is amplified within the retina and is accentuated along the vitreoretinal interface. Antagonism of the RAGE axis in NPDR reduces neurovascular perturbations, providing an important therapeutic target for intervention.
Insights
The receptor for advanced glycation end products (RAGE) axis is amplified in early diabetic retinopathy, contributing to neurovascular damage. Blocking this axis with soluble RAGE reduces neuronal dysfunction and capillary lesions in mice.
Area of Science:
- Ophthalmology
- Endocrinology
- Molecular Biology
Background:
- The receptor for advanced glycation end products (AGEs) is implicated in diabetic complications.
- The RAGE axis plays a role in the pathogenesis of diabetic retinopathy.
Purpose of the Study:
- To characterize the role of the RAGE axis in nonproliferative diabetic retinopathy (NPDR) using a murine model.
- To investigate the therapeutic potential of RAGE blockade in early diabetic retinopathy.
Main Methods:
- Utilized hyperglycemic, hyperlipidemic (HGHL) mice (apolipoprotein E(-/-) db/db) to model NPDR.
- Assessed retinal vascular lesions, neural function (electroretinography), and quantified the AGE/RAGE axis via immunohistochemistry, RT-PCR, autofluorescence, and ELISA.
- Administered soluble RAGE to evaluate the impact of RAGE blockade.
Main Results:
- HGHL mice showed early inner retinal neuronal dysfunction and accelerated development of retinal vascular lesions (acellular capillaries, pericyte ghosts).
- AGEs accumulated in the vitreous cavity and internal limiting membrane, associated with RAGE-expressing Müller cells.
- Soluble RAGE treatment ameliorated neuronal dysfunction and reduced capillary lesions, indicating RAGE axis involvement.
Conclusions:
- The RAGE axis is amplified in the retina during early NPDR, particularly at the vitreoretinal interface.
- Antagonism of the RAGE axis effectively reduces neurovascular perturbations in NPDR.
- The RAGE axis represents a promising therapeutic target for early diabetic retinopathy intervention.
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Diabetic Retinopathy
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