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Published on: June 12, 2013
Epigenetic upregulation of CLEC5A contributes to monocyte/macrophage dysfunction in coronary artery disease
Daoxi Qi1, Fan Wang1, Xiaokang Zhang1
1Center for Gene Diagnosis and Department of Clinical Laboratory Medicine, Zhongnan Hospital of Wuhan University, Donghu Road 169, Wuhan, 430071, China.
Insights
Epigenetic changes drive C-type lectin domain family 5 member A (CLEC5A) expression, worsening immune cell dysfunction in coronary artery disease (CAD). Folic acid intervention suppressed CLEC5A, reducing inflammation and atherosclerosis progression.
Area of Science:
- Immunology
- Epigenetics
- Cardiovascular Research
Background:
- Immune cell inflammation and dysfunction are key in coronary artery disease (CAD) pathogenesis.
- C-type lectin domain family 5 member A (CLEC5A) is a known inflammation modulator, but its role in CAD is unclear.
Purpose of the Study:
- To investigate CLEC5A's involvement in atherosclerosis.
- To explore the epigenetic mechanisms regulating CLEC5A in CAD.
Main Methods:
- Integrated methylome and transcriptome analyses in CAD patients.
- In vitro studies using THP-1 cells and monocyte/macrophage models.
- In vivo experiments with folic acid intervention in atherosclerosis models.
Main Results:
- CLEC5A was identified as a DNA methylation-driven gene in CAD, regulated by DNMT1 at the cg06744540 locus.
- Elevated CLEC5A expression correlated with hypomethylation and promoted monocyte/macrophage dysfunction, inflammation, and lipid accumulation via NF-κB signaling.
- Folic acid treatment reversed these effects, reducing CLEC5A expression, inflammation, and atherosclerotic plaque formation.
Conclusions:
- Epigenetic upregulation of CLEC5A accelerates CAD progression by impairing immune cell function.
- DNMT1-mediated demethylation at cg06744540 is a critical regulatory mechanism.
- Folic acid shows therapeutic potential by suppressing CLEC5A-driven inflammation and atherosclerosis.
Abstract:
Inflammatory activation and dysfunction of immune cells are essential events in coronary artery disease (CAD) pathogenesis. C-type lectin domain family 5 member A (CLEC5A) has recently been regarded as a potent modulator of inflammation, while its contribution to CAD remains undefined. This study aims to clarify the involvement of CLEC5A in atherosclerosis and explore its epigenetic regulatory mechanisms. Integrated methylome and transcriptome analyses identified CLEC5A as a DNA methylation-driven gene in CAD. Functional studies revealed that DNMT1 overexpression suppresses CLEC5A expression in THP-1 cells, with subsequent identification of the cg06744540 CpG site as the critical regulatory locus. Clinical correlation analyses demonstrated that elevated CLEC5A expression is inversely associated with hypomethylation at cg06744540 in CAD patients. Furthermore, CLEC5A overexpression significantly enhanced monocyte inflammation, migration, and adhesion, promoted macrophage polarization and lipid accumulation, and inhibited apoptosis. Mechanistic investigations revealed that CLEC5A exacerbates inflammation in monocyte/macrophage by activating the NF-κB signaling pathway. Conversely, CLEC5A knockdown resulted in opposite effects. Notably, treatment of cells with folic acid, a methylation-enhancing factor, significantly increased DNMT1 expression and declined CLEC5A expression. Consistently, folic acid reversed high-fat-induced CLEC5A expression and inflammation and suppressed the formation of atherosclerotic plaques in vivo. In conclusion, the epigenetic upregulation of CLEC5A through DNMT1-mediated cg06744540 demethylation contributed to monocyte/macrophage dysfunction, thus accelerating CAD progression.
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