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.

Related Concept Videos

Shearing Stress01:19

Shearing Stress

Shearing stress, denoted by the Greek letter tau (τ), is stress caused by forces acting transversely on an object. These forces create internal ones within the entity in the plane where the external forces are applied. The resultant of these internal forces is the shear in the section.
The average shearing stress can be calculated by dividing the shear by the area of the cross-section.
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Coronary Artery Disease II: Pathophysiology01:26

Coronary Artery Disease II: Pathophysiology

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19
Principal Stresses01:24

Principal Stresses

The graphical depiction of normal and shearing stress equations is represented by a circle, demonstrating the interplay between these stresses under different angular conditions. The center of this circle C, located on the vertical axis, represents the average normal stress, while its radius shows the range of stress variations. At points A and B, where the circle intersects the horizontal axis, the maximum and minimum normal stresses are observed, occurring without shearing stress. These...
296
Coronary Artery Disease IV: Preventive Measures01:26

Coronary Artery Disease IV: Preventive Measures

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27
Coronary Artery Disease I: Introduction01:30

Coronary Artery Disease I: Introduction

Coronary Artery Disease (CAD): An Overview with Scientific InsightsCoronary Artery Disease (CAD), often referred to as C-A-D, is a prevalent blood vessel disorder classified under the broader category of atherosclerosis. Atherosclerosis is a pathological process characterized by the hardening and narrowing of arteries due to the accumulation of atherosclerotic plaques. These plaques are composed of cholesterol, fatty substances, inflammatory cells, calcium, and fibrin, reducing blood flow to...
39
Stress: General Loading Conditions01:15

Stress: General Loading Conditions

To grasp the intricacy of real-world conditions where multiple loads are applied simultaneously to a structure, one might visualize a section passing through a specific point within a body, aligned parallel to the xy plane. This section is subjected to various forces, including original loads, normal forces, and shearing forces.
The shearing force, possessing potential directionality within the plane of the section, is simplified into two component forces running parallel to the x and y axes....
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