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Retinal redox stress and remodeling in cardiometabolic syndrome and diabetes
Ying Yang1, Melvin R Hayden, Susan Sowers
1Yunnan Province 2nd Hospital, Kunming, PR China.
Abstract:
Diabetic retinopathy (DR) is a significant cause of global blindness; a major cause of blindness in the United States in people aged between 20-74. There is emerging evidence that retinopathy is initiated and propagated by multiple metabolic toxicities associated with excess production of reactive oxygen species (ROS). The four traditional metabolic pathways involved in the development of DR include: increased polyol pathway flux, advanced glycation end-product formation, activation of protein kinase C isoforms, and hexosamine pathway flux. These pathways individually and synergistically contribute to redox stress with excess ROS resulting in retinal tissue injury resulting in significant microvascular blood retinal barrier remodeling. The toxicity of hyperinsulinemia, hyperglycemia, hypertension, dyslipidemia, increased cytokines and growth factors, in conjunction with redox stress, contribute to the development and progression of DR. Redox stress contributes to the development and progression of abnormalities of endothelial cells and pericytes in DR. This review focuses on the ultrastructural observations of the blood retinal barrier including the relationship between the endothelial cell and pericyte remodeling in young nine week old Zucker obese (fa/fa) rat model of obesity; cardiometabolic syndrome, and the 20 week old alloxan induced diabetic porcine model. Preventing or delaying the blindness associated with these intersecting abnormal metabolic pathways may be approached through strategies targeted to reduction of tissue inflammation and oxidative - redox stress. Understanding these abnormal metabolic pathways and the accompanying redox stress and remodeling may provide both the clinician and researcher a new concept of approaching this complicated disease process.
Insights
Diabetic retinopathy (DR) involves metabolic toxicities and excess reactive oxygen species (ROS), leading to retinal damage. Targeting inflammation and oxidative stress may prevent vision loss from DR.
Area of Science:
- Ophthalmology
- Endocrinology
- Cell Biology
Background:
- Diabetic retinopathy (DR) is a leading cause of blindness, particularly in the US, affecting individuals aged 20-74.
- Emerging evidence links DR pathogenesis to metabolic toxicities and excessive reactive oxygen species (ROS) production.
- Key metabolic pathways implicated include polyol, advanced glycation end-product formation, protein kinase C activation, and hexosamine pathways.
Purpose of the Study:
- To review the ultrastructural changes in the blood-retinal barrier (BRB) in animal models of obesity and diabetes.
- To elucidate the role of metabolic pathways and redox stress in DR development and progression.
- To explore potential therapeutic strategies targeting inflammation and oxidative stress.
Main Methods:
- Review of ultrastructural observations of the blood-retinal barrier.
- Examination of Zucker obese rats (obesity, cardiometabolic syndrome model).
- Analysis of alloxan-induced diabetic porcine models.
Main Results:
- Metabolic pathways synergistically contribute to redox stress and ROS production, causing retinal injury.
- Redox stress drives remodeling of endothelial cells and pericytes in DR.
- BRB integrity is compromised by hyperinsulinemia, hyperglycemia, hypertension, dyslipidemia, and increased cytokines.
Conclusions:
- Understanding the interplay of metabolic pathways, redox stress, and BRB remodeling is crucial for managing DR.
- Strategies aimed at reducing inflammation and oxidative stress may prevent or delay DR-associated vision loss.
- This review offers a novel conceptual framework for clinicians and researchers addressing DR.
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