Related Experiment Video
Updated: Jun 12, 2026

Coronary Progenitor Cells and Soluble Biomarkers in Cardiovascular Prognosis after Coronary Angioplasty
Published on: January 28, 2020
Gene expression profiling in whole blood of patients with coronary artery disease
Chiara Taurino1, William H Miller, Martin W McBride
1BHF Glasgow Cardiovascular Research Centre, University of Glasgow, UK.
Insights
Gene expression profiling in whole blood identified key microRNAs (miRNAs) and genes altered in coronary artery disease (CAD). Cardiac rehabilitation modulated these expression patterns, suggesting novel therapeutic targets for cardiovascular disease.
Area of Science:
- Molecular Biology
- Genomics
- Cardiovascular Research
Background:
- Gene expression profiling of whole blood offers a non-invasive method to study complex diseases like coronary artery disease (CAD).
- Understanding transcriptome dynamics is crucial for identifying disease-related genes and biological pathways.
Purpose of the Study:
- To investigate differential gene and microRNA (miRNA) expression in whole blood of patients with CAD compared to healthy controls.
- To analyze changes in gene and miRNA expression following a cardiac rehabilitation program in CAD patients post-revascularization.
Main Methods:
- Whole-blood gene expression analysis of messenger RNA (mRNA) and microRNA (miRNA) was performed on 12 CAD patients and 12 controls.
- Expression profiling was also conducted on 10 CAD patients before and after cardiac rehabilitation.
- Differentially expressed genes and miRNAs were identified, and biological pathway and miRNA target analyses were performed.
Main Results:
- 365 differentially expressed genes were found in CAD patients versus controls (175 up, 190 down).
- 645 differentially expressed genes were identified in CAD patients post-rehabilitation (196 up, 449 down).
- Several miRNAs, including hsa-miR-140-3p, hsa-miR-182, hsa-miR-92a, and hsa-miR-92b, showed significant differential expression, with notable modulation of oxidative phosphorylation and mitochondrial function pathways.
Conclusions:
- Whole blood serves as a viable surrogate tissue for identifying molecular changes in CAD.
- Differentially expressed miRNAs, genes, and modulated pathways identified in this study warrant further investigation for cardiovascular disease.
- This non-invasive approach may reveal potentially modifiable pathways and therapeutic targets for cardiovascular conditions.
Abstract:
Owing to the dynamic nature of the transcriptome, gene expression profiling is a promising tool for discovery of disease-related genes and biological pathways. In the present study, we examined gene expression in whole blood of 12 patients with CAD (coronary artery disease) and 12 healthy control subjects. Furthermore, ten patients with CAD underwent whole-blood gene expression analysis before and after the completion of a cardiac rehabilitation programme following surgical coronary revascularization. mRNA and miRNA (microRNA) were isolated for expression profiling. Gene expression analysis identified 365 differentially expressed genes in patients with CAD compared with healthy controls (175 up- and 190 down-regulated in CAD), and 645 in CAD rehabilitation patients (196 up- and 449 down-regulated post-rehabilitation). Biological pathway analysis identified a number of canonical pathways, including oxidative phosphorylation and mitochondrial function, as being significantly and consistently modulated across the groups. Analysis of miRNA expression revealed a number of differentially expressed miRNAs, including hsa-miR-140-3p (control compared with CAD, P=0.017), hsa-miR-182 (control compared with CAD, P=0.093), hsa-miR-92a and hsa-miR-92b (post- compared with pre-exercise, P<0.01). Global analysis of predicted miRNA targets found significantly reduced expression of genes with target regions compared with those without: hsa-miR-140-3p (P=0.002), hsa-miR-182 (P=0.001), hsa-miR-92a and hsa-miR-92b (P=2.2x10-16). In conclusion, using whole blood as a 'surrogate tissue' in patients with CAD, we have identified differentially expressed miRNAs, differentially regulated genes and modulated pathways which warrant further investigation in the setting of cardiovascular function. This approach may represent a novel non-invasive strategy to unravel potentially modifiable pathways and possible therapeutic targets in cardiovascular disease.
More Related Videos
09:45Isolation and Profiling of Human Primary Mesenteric Arterial Endothelial Cells at the Transcriptome Level
Published on: March 14, 2022
08:51Application of Unsupervised Multi-Omic Factor Analysis to Uncover Patterns of Variation and Molecular Processes Linked to Cardiovascular Disease
Published on: September 20, 2024
Related Concept Videos
Blood Studies for Cardiovascular System I: Cardiac Biomarkers
The essential diagnostic tools for detecting myocardial necrosis and monitoring individuals suspected of having acute coronary syndrome (ACS) include:
Troponins
Troponins, particularly cardiac troponins I and T, are the most precise and sensitive markers of myocardial injury. They are detectable within 4-6 hours of myocardial injury and remain...
Blood Studies for Cardiovascular System II: CRP, Hcy, and Cardiac Natriuretic Peptide Markers
These markers indicate stress or strain on the heart muscle:
Natriuretic Peptides (BNP)
Cardiac myocytes produce these hormones in response to ventricular stretching...
Blood Studies for Cardiovascular System III: Serum Lipid Profile
Serum lipids are fats and fatty substances in the blood and are crucial for various bodily functions, including energy storage, cellular structure, and hormone production. Serum lipids consist of cholesterol, triglycerides, and phospholipids.
Cholesterol is a soft, fat-like substance found in all body cells. It is crucial for producing hormones, vitamin D, and substances that aid...
Coronary Artery Disease I: Introduction
Coronary Artery Disease II: Pathophysiology
Pharmacogenomics: Identification of New Drug Targets