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Updated: Aug 4, 2025

Optical Coherence Tomography Based Biomechanical Fluid-Structure Interaction Analysis of Coronary Atherosclerosis Progression
Published on: January 15, 2022
The Role of Shear Stress in Coronary Artery Disease
Gerasimos Siasos1,2, Vasiliki Tsigkou2, Ahmet Umit Coskun1
1Cardiovascular Division, Harvard Medical School, Brigham and Women's Hospital, Boston, US.
Insights
Coronary artery disease progression involves plaque destabilization, influenced by endothelial shear stress and dysfunction. Understanding these mechanisms is key to preventing cardiac events and improving patient outcomes.
Area of Science:
- Cardiovascular Science
- Biomedical Engineering
Background:
- Coronary artery disease (CAD) is a major global health burden, with plaque progression mechanisms incompletely understood.
- Vulnerable plaques and acute coronary syndromes often occur without prior symptoms or evident disease.
- Complex interactions between traditional risk factors, genetics, and local hemodynamic forces influence CAD.
Approach:
- This review synthesizes current research on factors affecting coronary artery plaque progression.
- It highlights the role of endothelial shear stress and endothelial dysfunction in epicardial and microvascular coronary arteries.
- The review examines the intricate associations between these factors and cardiovascular complications.
Key Points:
- Endothelial shear stress and blood flow patterns are critical local hemodynamic forces.
- Endothelial dysfunction in both epicardial and microvascular vessels contributes to plaque progression.
- Inflammation and its interplay with hemodynamic forces and endothelial dysfunction are central to CAD.
Conclusions:
- Understanding the mechanisms of plaque progression, including endothelial shear stress and dysfunction, is vital for clinical practice.
- These insights offer potential avenues for novel therapeutic strategies targeting CAD.
- Further research into the complex interactions governing coronary atherosclerosis is warranted.
Abstract:
Coronary artery disease is the leading cause of morbidity and mortality worldwide, especially in developed countries, with an increasing incidence in developing countries. Despite the advances in cardiology, there are yet many unanswered questions about the natural history of coronary atherosclerosis. However, it has not been fully explained why some coronary artery plaques remain quiescent over time, whereas others evolve to a high-risk, "vulnerable" plaque with a predisposition to destabilize and induce a cardiac event. Furthermore, approximately half of the patients with acute coronary syndromes demonstrate no prior symptoms of ischemia or angiographically evident disease. Recent findings have indicated that apart from cardiovascular risk factors, genetics, and other unknown factors, local hemodynamic forces, such as endothelial shear stress, blood flow patterns, and endothelial dysfunction of the epicardial and microvascular coronary arteries, are associated with the progression of coronary plaque and the development of cardiovascular complications with complex interactions. In this review article, we summarize the mechanisms that affect coronary artery plaque progression, indicating the importance of endothelial shear stress, endothelial dysfunction of epicardial and microvascular vessels, inflammation, and their complex associations, underlying in parallel the clinical perspectives of these findings.
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