Association of Pericardiac Adipose Tissue With Coronary Artery Disease
Mingxuan Li1, Lin Qi2, Yanglei Li1
1Department of Cardiology, Huadong Hospital Affiliated to Fudan University, Shanghai, China.
Insights
Pericardial adipose tissue (PAT) dysfunction, linked to immune and inflammatory processes, is associated with coronary artery disease (CAD). This study identifies key genes, miRNAs, and drugs as potential biomarkers and therapeutic targets for CAD.
Area of Science:
- Cardiovascular Biology
- Adipose Tissue Research
- Molecular Medicine
Background:
- Coronary artery disease (CAD) is a global health concern.
- Pericardial adipose tissue (PAT) is implicated in CAD, but its molecular mechanisms remain unclear.
- This study investigates the role of human PAT in CAD.
Purpose of the Study:
- To characterize human pericardial adipose tissue (PAT).
- To explore the molecular mechanisms linking PAT to coronary artery disease (CAD).
- To identify potential diagnostic biomarkers and therapeutic targets for CAD.
Main Methods:
- RNA sequencing of PAT from CAD patients and controls.
- Bioinformatic analysis including pathway analysis, PPI network construction, and immune cell infiltration prediction.
- Validation of key genes and immune cell markers using RT-qPCR and immunohistochemistry.
Main Results:
- 147 differentially expressed genes (DEGs) were identified in CAD patients, primarily related to immune and inflammatory dysfunction.
- Monocytes and M1 macrophages were significantly increased in PAT of CAD patients.
- Key genes (Jun, ATF3, CXCR4, FOSB, CCl4), a diagnostic miRNA (hsa-miR-185-5p), and potential drugs (colchicine, fenofibrate) were identified.
Conclusions:
- PAT dysfunction, driven by immune and inflammatory processes, contributes to CAD.
- Identified hub genes, miRNAs, and drugs represent promising biomarkers and therapeutic targets for CAD management.
Background And Aim:
Coronary artery disease (CAD) poses a worldwide health threat. Compelling evidence shows that pericardial adipose tissue (PAT), a brown-like adipose adjacent to the external surface of the pericardium, is associated with CAD. However, the specific molecular mechanisms of PAT in CAD are elusive. This study aims to characterize human PAT and explore its association with CAD.
Methods:
We acquired samples of PAT from 31 elective cardiac surgery patients (17 CAD patients and 14 controls). The transcriptome characteristics were assessed in 5 CAD patients and 4 controls via RNA-sequencing. Cluster profile R package, String database, Cytoscape were applied to analyze the potential pathways and PPI-network key to DEGS, whereas the hubgenes were predicted via Metascape, Cytohubba, and MCODE. We use Cibersort, ENCORI, and DGIDB to predict immunoinfiltration, mRNA-miRNA target gene network, and search potential drugs targeting key DEGs. The predictable hubgenes and infiltrating inflammatory cells were validated in 22 patients (12 CAD samples and 10 control samples) through RT-qPCR and immunohistochemistry.
Results:
A total of 147 different genes (104 up-regulated genes and 43 down-regulated genes) were identified in CAD patients. These different genes were associated with immunity and inflammatory dysfunction. Cibersort analysis showed monocytes and macrophages were the most common subsets in immune cells, whereas immunohistochemical results revealed there were more macrophages and higher proportion of M1 subtype cells in PAT of CAD patients. The PPI network and module analysis uncovered several crucial genes, defined as candidate genes, including Jun, ATF3, CXCR4, FOSB, CCl4, which were validated through RT-qPCR. The miRNA-mRNA network implicated hsa-miR-185-5p as diagnostic targets and drug-gene network showed colchicine, fenofibrate as potential therapeutic drugs, respectively.
Conclusion:
This study demonstrates that PAT is mainly associated with the occurrence of CAD following the dysfunction of immune and inflammatory processes. The identified hubgenes, predicted drugs and miRNAs are promising biomarkers and therapeutic targets for CAD.
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