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Updated: Feb 23, 2026

Genome-Wide Analysis of DNA Methylation in Gastrointestinal Cancer
Published on: September 18, 2020
Genome-wide DNA methylation patterns in coronary heart disease
1Department of Cardiology, No. 254 Hospital of PLA, 300142, Tianjin, China.
Insights
This study reveals DNA methylation differences in vascular tissues, offering new insights into atherosclerosis mechanisms. Key pathways and genes like S100A10 may be potential therapeutic targets for coronary artery disease.
Area of Science:
- Cardiovascular Biology
- Epigenetics
- Molecular Medicine
Background:
- Atherosclerosis is a complex cardiovascular disease.
- Understanding its molecular mechanisms is crucial for effective treatment.
- DNA methylation plays a significant role in gene regulation and disease development.
Purpose of the Study:
- To compare DNA methylation patterns in different vascular tissues from coronary heart disease patients.
- To identify differentially methylated genes (DMGs) and associated pathways.
- To explore potential therapeutic targets for atherosclerosis.
Main Methods:
- Comparative analysis of DNA methylation data from coronary atherosclerotic plaques (CAP), great saphenous vein (GSV), and internal mammary artery (IMA).
- Identification and analysis of differentially methylated genes (DMGs) using bioinformatics tools.
- Pathway enrichment analysis and transcription factor (TF) prediction.
Main Results:
- Significant differences in DNA methylation were observed between CAP, GSV, and IMA.
- S100A10 gene was found to be hypomethylated in CAP.
- Hypomethylated genes in CAP were associated with immune response pathways (cytokine-cytokine receptor interaction, MAPK signaling pathway).
Conclusions:
- DNA methylation variations in vascular tissues offer insights into atherosclerosis pathogenesis.
- Identified pathways (cytokine-cytokine receptor interaction, MAPK signaling) and genes (S100A10) may represent novel therapeutic targets.
- Transcription factor NF-kB is implicated and warrants further investigation for atherosclerosis treatment.
Background:
To better understand the molecular mechanisms of atherosclerosis, we conducted a comparative analysis of DNA methylation patterns in right coronary arteries in the area of advanced atherosclerotic plaques (CAP), great saphenous vein (GSV), and internal mammary artery (IMA) of patients affected by coronary heart disease.
Methods:
DNA methylation data (accession number E‑GEOD-62867) were divided into three paired groups: CAP vs. IMA, CAP vs. GSV, and IMA vs. GSV. Differentially methylated genes (DMGs) were extracted to analyze the changes in the DMGs in the three different tissues. The gplots package was used for the clustering and heatmap analysis of DMGs. Subsequently, DMG-related pathways were identified using DAVID (Database for Annotation, Visualization and Integrated Discovery) and transcription factors (TFs) were predicted.
Results:
Based on the filtering criterion of p < 0.05, and a mean beta value difference of ≥0.2, there were 252, 373, and 259 DMGs, respectively, in the CAP vs. IMA, CAP vs. GSV, and IMA vs. GSV groups. Interestingly, the S100A10 gene was hypomethylated in CAP compared with IMA and GSV. Clustering and heatmap analyses suggested that DMGs were segregated into two distinct clusters. Hypermethylated genes in CAP as compared with GSV were only involved in the pathway of fat digestion and absorption, while hypomethylated genes in CAP compared with GSV mainly participated in immune response-associated pathways (cytokine-cytokine receptor interaction, MAPK signaling pathway).
Conclusion:
The DNA methylation differences in vascular tissues of patients with coronary artery disease may provide new insights into the mechanisms underlying the development of atherosclerosis. The functions identified here-cytokine-cytokine receptor interaction, MAPK signaling pathway, DMG (S100A10), and TF (NF-kB)-may serve as potential targets in the treatment of atherosclerosis.
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