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State-Dependent DNA Methylation Signatures Distinguish Acute from Stable Coronary Syndromes
Işık Tekin1, Alten Oskay2, Tülay Oskay3
1Department of Cardiology, Faculty of Medicine, Pamukkale University, 20160 Denizli, Türkiye.
Insights
DNA methylation patterns differ significantly between acute coronary syndrome (ACS) and stable coronary syndrome (SCS). These distinct epigenetic profiles highlight potential molecular markers for coronary artery disease acuity and progression.
Area of Science:
- Cardiovascular Epigenetics
- Molecular Biology
- Genomics
Background:
- Coronary artery disease (CAD) manifests as stable (SCS) and acute (ACS) syndromes.
- Epigenetic factors, like DNA methylation, are implicated in CAD progression and plaque destabilization.
- Comprehensive genome-wide methylation differences between ACS, SCS, and controls are not fully understood.
Purpose of the Study:
- To investigate genome-wide DNA methylation differences across ACS, SCS, and healthy individuals.
- To identify distinct epigenetic profiles associated with acute versus stable coronary syndromes.
- To explore the role of DNA methylation in CAD pathogenesis and disease acuity.
Main Methods:
- Genome-wide DNA methylation analysis was conducted on patients with ACS, SCS, and healthy controls.
- Pairwise comparisons (ACS vs. control, SCS vs. control, ACS vs. SCS) were performed.
- Differentially methylated regions were identified using logistic regression (methylKit package, R) with stringent statistical criteria (q-value < 0.05, |Δβ| > 20%).
Main Results:
- Unsupervised hierarchical clustering revealed distinct epigenetic profiles separating ACS, SCS, and control samples.
- ACS exhibited more significant methylation alterations than SCS compared to controls.
- Pathway analysis indicated enrichment of stress response, apoptosis, and cell adhesion pathways in ACS, and intercellular communication/vascular signaling in SCS.
Conclusions:
- Acute and stable coronary syndromes possess distinct DNA methylation landscapes and associated pathway signatures.
- Epigenetic regulation of stress, adhesion, and signaling pathways may influence CAD acuity and progression.
- DNA methylation represents a potential molecular marker for differentiating CAD states and predicting disease trajectory.
Abstract:
Coronary artery disease presents heterogeneous clinical manifestations ranging from stable coronary syndrome (SCS) to acute coronary syndrome (ACS). Epigenetic mechanisms, particularly DNA methylation, may contribute to both chronic disease progression and acute plaque destabilization. However, genome-wide methylation differences between ACS, SCS, and healthy individuals remain incompletely characterized. Genome-wide DNA methylation analysis was performed in patients with ACS, patients with SCS, and healthy controls using pairwise comparisons (ACS vs. control, SCS vs. control, and ACS vs. SCS). Differentially methylated regions were identified using logistic regression implemented in the methylKit package in R. Regions with a false discovery rate-adjusted q-value < 0.05 and an absolute methylation difference (|Δβ|) > 20% were considered significant. Unsupervised hierarchical clustering revealed clear separation between ACS, SCS, and control samples, indicating distinct epigenetic profiles. ACS showed the most pronounced methylation alterations compared to controls, whereas SCS exhibited more moderate changes consistent with chronic epigenetic remodeling. Direct comparison between ACS and SCS identified dynamic, state-dependent methylation differences. Pathway analysis demonstrated enrichment of stress response, apoptotic signaling, and cell adhesion pathways in ACS, while SCS was primarily associated with pathways related to intercellular communication and vascular signaling. Our findings demonstrate that acute and stable coronary syndromes are characterized by distinct DNA methylation landscapes and pathway signatures. Epigenetic regulation of stress, adhesion, and signaling pathways may contribute to disease acuity and progression, highlighting DNA methylation as a potential molecular marker in coronary artery disease.
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