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Updated: Jun 7, 2026

Optical Coherence Tomography Based Biomechanical Fluid-Structure Interaction Analysis of Coronary Atherosclerosis Progression
Published on: January 15, 2022
Role of hemodynamic shear stress in cardiovascular disease
Emanuele Cecchi1, Cristina Giglioli, Serafina Valente
1Dipartimento del Cuore e dei Vasi, Azienda Ospedaliero-Universitaria Careggi, Firenze, Italy. emanuelececchi@virgilio.it
Insights
Low shear stress in arteries promotes atherosclerosis development, while high shear stress offers protection. Understanding wall shear stress aids in identifying high-risk plaques and guiding treatments for cardiovascular diseases.
Area of Science:
- Cardiovascular Biology
- Biophysics
- Medical Science
Background:
- Atherosclerosis is a leading cause of death globally.
- Inflammation and altered blood flow are key factors in atherosclerotic lesion development.
- Blood flow exerts shear stress on vessel walls, influencing cell behavior.
Purpose of the Study:
- To explore the role of wall shear stress in atherosclerosis.
- To investigate the association between shear stress patterns and lesion localization.
- To highlight the clinical implications of shear stress measurement.
Main Methods:
- Analysis of blood flow dynamics and shear stress distribution in arterial regions.
- Correlation of shear stress levels with the presence and location of atherosclerotic lesions.
- Review of existing literature on shear stress and cardiovascular pathologies.
Main Results:
- Physiologic shear stress protects against atherosclerotic lesions.
- Low shear stress areas, common in bifurcations, are prone to lesion development.
- Altered shear stress is linked to aneurysms and restenosis post-angioplasty.
Conclusions:
- Wall shear stress patterns significantly influence atherosclerotic lesion localization.
- Measuring shear stress can identify high-risk plaques and guide therapeutic strategies.
- Shear stress evaluation is crucial for predicting restenosis and designing better stents.
Abstract:
Atherosclerosis is the main cause of morbidity and mortality in the Western world. Inflammation and blood flow alterations are new markers emerging as possible determinants for the development of atherosclerotic lesions. In particular, blood flow exerts a shear stress on vessel walls that alters cell physiology. Shear stress arises from the friction between two virtual layers of a fluid and is induced by the difference in motion and viscosity between these layers. Regions of the arterial tree with uniform geometry are exposed to a unidirectional and constant flow, which determines a physiologic shear stress, while arches and bifurcations are exposed to an oscillatory and disturbed flow, which determines a low shear stress. Atherosclerotic lesions develop mainly in areas of low shear stress, while those exposed to a physiologic shear stress are protected. The presence of areas of the arterial tree with different wall shear stress may explain, in part, the different localization of atherosclerotic lesions in both coronary and extracoronary arteries. The measurement of this parameter may help in identifying atherosclerotic plaques at higher risk as well as in evaluating the efficacy of different pharmacological interventions. Moreover, an altered shear stress is associated with the occurrence of both aortic and intracranial aneurysms, possibly leading to their growth and rupture. Finally, the evaluation of shear stress may be useful for predicting the risk of developing restenosis after coronary and peripheral angioplasty and for devising a coronary stent with a strut design less thrombogenic and more conducive to endothelization.
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