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Published on: June 13, 2013
Glyoxalase System as a Therapeutic Target against Diabetic Retinopathy
Gemma Aragonès1, Sheldon Rowan1,2,3, Sarah G Francisco1
1Laboratory for Nutrition and Vision Research, USDA Human Nutrition Research Center on Aging, Tufts University, Boston, MA 02155, USA.
Abstract:
Hyperglycemia, a defining characteristic of diabetes, combined with oxidative stress, results in the formation of advanced glycation end products (AGEs). AGEs are toxic compounds that have adverse effects on many tissues including the retina and lens. AGEs promote the formation of reactive oxygen species (ROS), which, in turn, boost the production of AGEs, resulting in positive feedback loops, a vicious cycle that compromises tissue fitness. Oxidative stress and the accumulation of AGEs are etiologically associated with the pathogenesis of multiple diseases including diabetic retinopathy (DR). DR is a devastating microvascular complication of diabetes mellitus and the leading cause of blindness in working-age adults. The onset and development of DR is multifactorial. Lowering AGEs accumulation may represent a potential therapeutic approach to slow this sight-threatening diabetic complication. To set DR in a physiological context, in this review we first describe relations between oxidative stress, formation of AGEs, and aging in several tissues of the eye, each of which is associated with a major age-related eye pathology. We summarize mechanisms of AGEs generation and anti-AGEs detoxifying systems. We specifically feature the potential of the glyoxalase system in the retina in the prevention of AGEs-associated damage linked to DR. We provide a comparative analysis of glyoxalase activity in different tissues from wild-type mice, supporting a major role for the glyoxalase system in the detoxification of AGEs in the retina, and present the manipulation of this system as a therapeutic strategy to prevent the onset of DR.
Insights
Advanced glycation end products (AGEs) contribute to diabetic retinopathy (DR). Enhancing the glyoxalase system in the retina may prevent AGEs-related damage and slow DR progression.
Area of Science:
- Ophthalmology
- Endocrinology
- Biochemistry
Background:
- Hyperglycemia and oxidative stress in diabetes lead to toxic advanced glycation end products (AGEs).
- AGEs accumulate in ocular tissues, contributing to diabetic retinopathy (DR) pathogenesis.
- DR is a leading cause of blindness, driven by microvascular complications of diabetes.
Purpose of the Study:
- To review the role of oxidative stress, AGEs, and aging in eye pathologies, particularly DR.
- To explore AGEs generation mechanisms and detoxification systems.
- To highlight the glyoxalase system's potential in preventing AGEs-associated damage in DR.
Main Methods:
- Literature review on oxidative stress, AGEs, and aging in ocular tissues.
- Summary of AGEs generation and detoxification pathways.
- Comparative analysis of glyoxalase activity in wild-type mouse tissues.
Main Results:
- AGEs accumulation and oxidative stress form vicious cycles that damage tissues like the retina.
- The glyoxalase system plays a significant role in detoxifying AGEs in the retina.
- Comparative analysis supports the glyoxalase system's importance in retinal AGEs detoxification.
Conclusions:
- Lowering AGEs accumulation is a potential therapeutic strategy for DR.
- The glyoxalase system is a key player in preventing AGEs-related damage in the retina.
- Manipulating the glyoxalase system presents a promising therapeutic strategy for preventing DR onset.
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