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Epigenetics and Regulation of Oxidative Stress in Diabetic Retinopathy
Arul J Duraisamy1, Manish Mishra1, Anjaneyulu Kowluru2,3
1Department of Ophthalmology, Wayne State University, Detroit, Michigan, United States.
Purpose:
Oxidative stress plays a central role in the development of diabetic retinopathy, and in the pathogenesis of this blinding disease, activation of NADPH oxidase 2 (Nox2)-mediated cytosolic reactive oxygen species (ROS) production precedes mitochondrial damage. The multicomponent cytosolic Nox2 has an obligatory component, Ras-related C3 botulinum toxin substrate 1 (Rac1); in diabetes, Rac1 is functionally and transcriptionally active. Diabetes also facilitates many epigenetic modifications, and activates both DNA methylating (Dnmts) and hydroxymethylating (Tets) enzymes. Our aim was to investigate the role of epigenetics in Rac1 regulation in diabetes.
Methods:
Using human retinal endothelial cells, exposed to high glucose, 5-methyl cytosine (5mC) and 5-hydroxy methyl cytosine (5hmC) levels, and binding of Dnmt and Tets were quantified at the Rac1 promoter. The effect of inhibition of Dnmts/Tets (pharmacological inhibitors or short interfering RNA [siRNA]) on glucose-induced activation of Rac1-ROS production was evaluated. Results were confirmed in retinal microvessels from streptozotocin-induced diabetic mice receiving intravitreally Dnmt1-siRNA.
Results:
Despite high glucose-induced increased binding of Dnmt1, 5mC levels remained subnormal at Rac1 promoter. But, at the same site, 5hmC levels and transcription factor nuclear factor (NF)-kB binding were increased. Inhibition of Dnmts/Tets prevented increase in 5hmC and NF-kB binding, and attenuated Rac1 activation. Similarly, in mouse retinal microvessels, Dnmt1-siRNA ameliorated diabetes-induced increase in Rac1 transcripts and activity, and decreased ROS levels.
Conclusions:
Thus, despite Dnmts activation, concomitant increase in Tets rapidly hydroxymethylates 5mC, allowing NF-κB to bind and activate Rac1. These results imply a critical role of an active DNA methylation in cytosolic ROS regulation in the development of diabetic retinopathy.
Insights
Epigenetic changes in diabetes activate Ras-related C3 botulinum toxin substrate 1 (Rac1), increasing oxidative stress and contributing to diabetic retinopathy. Inhibiting DNA methylating and hydroxymethylating enzymes reduced Rac1 activation and reactive oxygen species (ROS) production.
Area of Science:
- Ophthalmology
- Molecular Biology
- Epigenetics
Background:
- Diabetic retinopathy (DR) pathogenesis involves oxidative stress, with NADPH oxidase 2 (Nox2) and Ras-related C3 botulinum toxin substrate 1 (Rac1) activation preceding mitochondrial damage.
- Diabetes mellitus induces epigenetic modifications, activating DNA methylating (Dnmts) and hydroxymethylating (Tets) enzymes, potentially influencing Rac1 activity.
Purpose of the Study:
- To investigate the role of epigenetic modifications in regulating Rac1 in the context of diabetes.
- To understand how DNA methylation and hydroxymethylation impact Rac1 expression and subsequent oxidative stress in diabetic retinopathy.
Main Methods:
- Human retinal endothelial cells exposed to high glucose were analyzed for 5-methyl cytosine (5mC) and 5-hydroxy methyl cytosine (5hmC) levels at the Rac1 promoter.
- The impact of inhibiting Dnmts/Tets on glucose-induced Rac1 activation and ROS production was assessed using pharmacological inhibitors and short interfering RNA (siRNA).
- Experiments were validated in retinal microvessels from diabetic mice treated with Dnmt1-siRNA.
Main Results:
- High glucose increased Dnmt1 binding but decreased 5mC at the Rac1 promoter, while 5hmC and nuclear factor-kappa B (NF-κB) binding increased.
- Inhibition of Dnmts/Tets reversed the 5hmC and NF-κB increases, attenuating Rac1 activation.
- Dnmt1-siRNA treatment in diabetic mice reduced Rac1 transcripts, activity, and ROS levels.
Conclusions:
- Despite Dnmt activation in diabetes, increased Tets rapidly hydroxymethylate 5mC, enabling NF-κB binding and Rac1 activation.
- Active DNA methylation plays a critical role in regulating cytosolic ROS production, contributing to the development of diabetic retinopathy.
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