Diabetic Retinopathy and Regulation of Mitochondrial Glutathione–Glutathione Peroxidase Axis in Hyperhomocysteinemia

Diabetic patients have elevated homocysteine levels, and hyperhomocysteinemia is shown to exacerbate mitochondrial damage, which plays a central role in diabetic retinopathy. Glutathione peroxidases (GPx) catalyze hydrogen peroxide (H<sub>2</sub>O<sub>2</sub>) reduction using...

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出版年:Antioxidants
主要な著者: Pooja Malaviya, Renu A. Kowluru
フォーマット: 論文
言語:英語
出版事項: MDPI AG 2024-02-01
主題:
オンライン・アクセス:https://www.mdpi.com/2076-3921/13/3/254
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author Pooja Malaviya
Renu A. Kowluru
author_facet Pooja Malaviya
Renu A. Kowluru
author_sort Pooja Malaviya
collection DOAJ
container_title Antioxidants
description Diabetic patients have elevated homocysteine levels, and hyperhomocysteinemia is shown to exacerbate mitochondrial damage, which plays a central role in diabetic retinopathy. Glutathione peroxidases (GPx) catalyze hydrogen peroxide (H<sub>2</sub>O<sub>2</sub>) reduction using glutathione (GSH) as a cofactor. GSH and GPx are mainly cytosolic but are also present in the mitochondria to neutralize H<sub>2</sub>O<sub>2</sub> produced by superoxide dismutase, and in diabetes, they are downregulated. Hyperhomocysteinemia also disrupts the balance between S-adenosyl-L-homocysteine and S-adenosylmethionine (SAM); SAM is also a methyl donor for DNA methylation. The aim of this study was to investigate the role of homocysteine in mitochondrial GSH–GPx1 regulation in diabetic retinopathy. Human retinal endothelial cells in 20 mM D-glucose + high homocysteine were analyzed for ROS, GSH and GPx in the mitochondria, and SAM levels and <i>GPx1</i> promoter DNA methylation were also studied (5-methylcytosine and MS-PCR). The results were confirmed in the retina from streptozotocin-induced hyperhomocysteinemic (cystathionine-β-synthase-deficient) diabetic mice. High homocysteine exacerbated the glucose-induced decrease in GSH levels and GPx activity in the mitochondria and the downregulation of <i>GPx1</i> transcripts and further increased SAM levels and <i>GPx1</i> promoter DNA methylation. Similar results were obtained in a hyperglycemic–hyperhomocysteinemic mouse model. Thus, elevated homocysteine in diabetes hypermethylates <i>GPx1</i> promoter, thus decreasing the mitochondrial GPx/GSH pool and exacerbating mitochondrial damage. Modulating hyperhomocysteinemia could be a potential therapeutic avenue to target mitochondrial dysfunction in diabetic retinopathy.
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spelling doaj-art-5dde44ebddbc4bc9a1e78bc7cf9e636d2025-08-19T23:21:10ZengMDPI AGAntioxidants2076-39212024-02-0113325410.3390/antiox13030254Diabetic Retinopathy and Regulation of Mitochondrial Glutathione–Glutathione Peroxidase Axis in HyperhomocysteinemiaPooja Malaviya0Renu A. Kowluru1Ophthalmology, Visual and Anatomical Sciences, Wayne State University, Detroit, MI 48202, USAOphthalmology, Visual and Anatomical Sciences, Wayne State University, Detroit, MI 48202, USADiabetic patients have elevated homocysteine levels, and hyperhomocysteinemia is shown to exacerbate mitochondrial damage, which plays a central role in diabetic retinopathy. Glutathione peroxidases (GPx) catalyze hydrogen peroxide (H<sub>2</sub>O<sub>2</sub>) reduction using glutathione (GSH) as a cofactor. GSH and GPx are mainly cytosolic but are also present in the mitochondria to neutralize H<sub>2</sub>O<sub>2</sub> produced by superoxide dismutase, and in diabetes, they are downregulated. Hyperhomocysteinemia also disrupts the balance between S-adenosyl-L-homocysteine and S-adenosylmethionine (SAM); SAM is also a methyl donor for DNA methylation. The aim of this study was to investigate the role of homocysteine in mitochondrial GSH–GPx1 regulation in diabetic retinopathy. Human retinal endothelial cells in 20 mM D-glucose + high homocysteine were analyzed for ROS, GSH and GPx in the mitochondria, and SAM levels and <i>GPx1</i> promoter DNA methylation were also studied (5-methylcytosine and MS-PCR). The results were confirmed in the retina from streptozotocin-induced hyperhomocysteinemic (cystathionine-β-synthase-deficient) diabetic mice. High homocysteine exacerbated the glucose-induced decrease in GSH levels and GPx activity in the mitochondria and the downregulation of <i>GPx1</i> transcripts and further increased SAM levels and <i>GPx1</i> promoter DNA methylation. Similar results were obtained in a hyperglycemic–hyperhomocysteinemic mouse model. Thus, elevated homocysteine in diabetes hypermethylates <i>GPx1</i> promoter, thus decreasing the mitochondrial GPx/GSH pool and exacerbating mitochondrial damage. Modulating hyperhomocysteinemia could be a potential therapeutic avenue to target mitochondrial dysfunction in diabetic retinopathy.https://www.mdpi.com/2076-3921/13/3/254diabetic retinopathyDNA methylationglutathioneperoxidasehomocysteinemitochondria
spellingShingle Pooja Malaviya
Renu A. Kowluru
Diabetic Retinopathy and Regulation of Mitochondrial Glutathione–Glutathione Peroxidase Axis in Hyperhomocysteinemia
diabetic retinopathy
DNA methylation
glutathione
peroxidase
homocysteine
mitochondria
title Diabetic Retinopathy and Regulation of Mitochondrial Glutathione–Glutathione Peroxidase Axis in Hyperhomocysteinemia
title_full Diabetic Retinopathy and Regulation of Mitochondrial Glutathione–Glutathione Peroxidase Axis in Hyperhomocysteinemia
title_fullStr Diabetic Retinopathy and Regulation of Mitochondrial Glutathione–Glutathione Peroxidase Axis in Hyperhomocysteinemia
title_full_unstemmed Diabetic Retinopathy and Regulation of Mitochondrial Glutathione–Glutathione Peroxidase Axis in Hyperhomocysteinemia
title_short Diabetic Retinopathy and Regulation of Mitochondrial Glutathione–Glutathione Peroxidase Axis in Hyperhomocysteinemia
title_sort diabetic retinopathy and regulation of mitochondrial glutathione glutathione peroxidase axis in hyperhomocysteinemia
topic diabetic retinopathy
DNA methylation
glutathione
peroxidase
homocysteine
mitochondria
url https://www.mdpi.com/2076-3921/13/3/254
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