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Updated: Feb 11, 2026

Methylated DNA Immunoprecipitation
Published on: January 2, 2009
DNA Methylation-a Potential Source of Mitochondria DNA Base Mismatch in the Development of Diabetic Retinopathy
Manish Mishra1, Renu A Kowluru2
1Kresge Eye Institute, Wayne State University, Detroit, MI, 48201, USA.
Abstract:
In the development of diabetic retinopathy, retinal mitochondria are dysfunctional, and mitochondrial DNA (mtDNA) is damaged with increased base mismatches and hypermethylated cytosines. DNA methylation is also a potential source of mutation, and in diabetes, the noncoding region, the displacement loop (D-loop), experiences more methylation and base mismatches than other regions of the mtDNA. Our aim was to investigate a possible crosstalk between mtDNA methylation and base mismatches in the development of diabetic retinopathy. The effect of inhibition of Dnmts (by 5-aza-2'-deoxycytidine or Dnmt1-siRNA) on glucose-induced mtDNA base mismatches was investigated in human retinal endothelial cells by surveyor endonuclease digestion and validated by Sanger sequencing. The role of deamination factors on increased base mismatches was determined in the cells genetically modulated for mitochondrial superoxide dismutase (Sod2) or cytidine-deaminase (APOBEC3A). The results were confirmed in an in vivo model using retinal microvasculature from diabetic mice overexpressing Sod2. Inhibition of DNA methylation, or regulation of cytosine deamination, significantly inhibited an increase in base mismatches at the D-loop and prevented mitochondrial dysfunction. Overexpression of Sod2 in mice also prevented diabetes-induced D-loop hypermethylation and increase in base mismatches. The crosstalk between DNA methylation and base mismatches continued even after termination of hyperglycemia, suggesting its role in the metabolic memory phenomenon associated with the progression of diabetic retinopathy. Inhibition of DNA methylation limits the availability of methylated cytosine for deamination, suggesting a crosstalk between DNA methylation and base mismatches. Thus, regulation of DNA methylation, or its deamination, should impede the development of diabetic retinopathy by preventing formation of base mismatches and mitochondrial dysfunction.
Insights
DNA methylation and base mismatches in mitochondrial DNA are linked in diabetic retinopathy. Inhibiting DNA methylation or cytosine deamination prevents mitochondrial dysfunction and may impede disease progression.
Area of Science:
- Ophthalmology
- Genetics
- Cell Biology
Background:
- Diabetic retinopathy involves mitochondrial dysfunction and damage to mitochondrial DNA (mtDNA), including base mismatches and hypermethylation.
- The displacement loop (D-loop) region of mtDNA is particularly susceptible to methylation and base mismatches in diabetes.
Purpose of the Study:
- To investigate the crosstalk between mtDNA methylation and base mismatches in diabetic retinopathy development.
- To explore the therapeutic potential of targeting DNA methylation and deamination pathways.
Main Methods:
- Inhibition of DNA methyltransferases (DNMTs) using 5-aza-2'-deoxycytidine or Dnmt1-siRNA in human retinal endothelial cells.
- Genetic modulation of superoxide dismutase (Sod2) and cytidine deaminase (APOBEC3A) to assess deamination factors.
- Validation in an in vivo model using retinal microvasculature from diabetic mice overexpressing Sod2.
Main Results:
- Inhibition of DNA methylation or regulation of cytosine deamination significantly reduced mtDNA base mismatches and prevented mitochondrial dysfunction.
- Overexpression of Sod2 in mice prevented diabetes-induced D-loop hypermethylation and base mismatches.
- The observed crosstalk persisted even after hyperglycemia cessation, indicating a role in metabolic memory.
Conclusions:
- A crosstalk exists between DNA methylation and base mismatches in the mtDNA D-loop, contributing to diabetic retinopathy.
- Targeting DNA methylation or deamination pathways offers a potential strategy to prevent mitochondrial dysfunction and impede diabetic retinopathy progression.
- The findings highlight the role of metabolic memory in the long-term development of diabetic retinopathy.
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