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Effect of diabetes status and hyperglycemia on global DNA methylation and hydroxymethylation
Jairo Arturo Pinzón-Cortés1,2, Angelina Perna-Chaux1, Nicolás Steven Rojas-Villamizar1
1Biological Sciences DepartmentLaboratory of Human Genetics, Universidad de los Andes, Bogotá, Colombia.
Abstract:
Type 2 diabetes mellitus (T2DM) is characterized by oxidative stress that could lead to chronic micro- and macrovascular complications. We hypothesized that some of the target organ damage is mediated by oxidative alterations in epigenetic mechanisms involving DNA methylation (5mC) and DNA hydroxymethylation (5hmC). We analyzed global DNA methylation and hydroxymethylation in peripheral blood cells in well-controlled and poorly controlled patients with T2DM and compared them with healthy controls. We also analyzed microarrays of DNA methylation and gene expression of other important tissues in the context of diabetes from the GEO database repository and then compared these results with our experimental gene expression data. DNA methylation and, more importantly, DNA hydroxymethylation levels were increased in poorly controlled patients compared to well-controlled and healthy individuals. Both 5mC and 5hmC measurements were correlated with the percentage of glycated hemoglobin, indicating a direct impact of hyperglycemia on changes over the epigenome. The analysis of methylation microarrays was concordant, and 5mC levels were increased in the peripheral blood of T2DM patients. However, the DNA methylation levels were the opposite of those in other tissues, such as the pancreas, adipose tissue and skeletal muscle. We hypothesize that a process of DNA oxidation associated with hyperglycemia may explain the DNA demethylation in which the activity of ten-eleven translocation (TET) proteins is not sufficient to complete the process. High levels of glucose lead to cellular oxidation, which triggers the process of DNA demethylation aided by TET enzymes, resulting in epigenetic dysregulation of the damaged tissues.
Insights
In type 2 diabetes mellitus (T2DM), increased DNA methylation and hydroxymethylation in blood correlate with poor glycemic control. Hyperglycemia-induced oxidative stress may drive epigenetic changes, impacting T2DM complications.
Area of Science:
- Epigenetics
- Endocrinology
- Molecular Biology
Background:
- Type 2 diabetes mellitus (T2DM) involves oxidative stress, contributing to micro- and macrovascular complications.
- Epigenetic mechanisms, including DNA methylation (5mC) and hydroxymethylation (5hmC), are implicated in T2DM pathogenesis.
- Oxidative alterations in epigenetics may mediate target organ damage in T2DM.
Purpose of the Study:
- To investigate global DNA methylation and hydroxymethylation levels in peripheral blood cells of T2DM patients.
- To compare epigenetic profiles between well-controlled, poorly controlled T2DM patients, and healthy controls.
- To analyze DNA methylation in other diabetic tissues and correlate findings with gene expression data.
Main Methods:
- Analysis of global DNA methylation (5mC) and hydroxymethylation (5hmC) in peripheral blood cells.
- Comparison of epigenetic data with glycated hemoglobin levels.
- Bioinformatic analysis of public methylation and gene expression datasets (GEO database).
Main Results:
- DNA methylation and hydroxymethylation levels were elevated in poorly controlled T2DM patients compared to well-controlled and healthy individuals.
- Both 5mC and 5hmC levels positively correlated with glycated hemoglobin, suggesting hyperglycemia's impact.
- While peripheral blood showed increased 5mC, other tissues like pancreas and muscle exhibited opposite methylation patterns.
Conclusions:
- Hyperglycemia-induced oxidative stress may dysregulate epigenetic mechanisms in T2DM.
- Elevated DNA methylation and hydroxymethylation in blood reflect poor glycemic control.
- Discrepant epigenetic changes between blood and target tissues highlight tissue-specific responses to hyperglycemia.