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Updated: Oct 23, 2025

Optical Coherence Tomography Based Biomechanical Fluid-Structure Interaction Analysis of Coronary Atherosclerosis Progression
Published on: January 15, 2022
The effects of plaque morphological characteristics on the post-stenotic flow in left main coronary artery
Tahura Hossain1, Noushin Anan1, M Tarik Arafat2
1Department of Biomedical Engineering, Military Institute of Science and Technology (MIST), Dhaka-1216, Bangladesh.
Insights
Plaque characteristics like stenosis severity, eccentricity, and lesion length significantly impact blood flow in the left main coronary artery (LMCA). Understanding these hemodynamic effects is crucial for predicting atherosclerotic plaque progression and improving treatment strategies.
Area of Science:
- Cardiovascular Science
- Biomedical Engineering
- Medical Imaging
Background:
- Local hemodynamics critically influence atherosclerotic plaque progression, especially at the left main coronary artery (LMCA) bifurcation.
- Morphological characteristics of atherosclerotic plaques, including stenosis severity (SS), eccentricity index (EI), and lesion length (LL), are key factors in disease development.
Purpose of the Study:
- To investigate the effects of plaque morphological characteristics (SS, EI, LL) on post-stenotic hemodynamics in the LMCA.
- To analyze hemodynamic parameters such as wall shear stress (WSS), oscillatory shear index (OSI), and relative residence time (RRT) in relation to plaque features.
Main Methods:
- Computational fluid dynamics (CFD) simulations were performed on 20 computer-generated and 5 patient-specific LMCA models.
- Analysis included hemodynamic parameters: velocity, pressure, wall pressure gradient (WPG), WSS, time-averaged WSS (TAWSS), OSI, RRT, and helicity intensity (h2).
Main Results:
- Stenosis eccentricity's effect on hemodynamics varied with stenosis severity and lesion length.
- Higher stenosis severity correlated with increased regions of low WSS, low TAWSS, and high RRT.
- For longer lesions, high OSI and RRT regions generally increased with eccentricity; low helicity was observed except in highly eccentric, long lesions.
Conclusions:
- All investigated plaque morphological characteristics (SS, EI, LL) play a significant role in atherosclerotic plaque progression.
- Understanding these hemodynamic influences can enhance treatment planning for LMCA diseases.
- A highly eccentric, long lesion model showed potential atheroprotective flow due to high helical flow.
Abstract:
Local post-stenotic hemodynamics has critical influence in the atherosclerotic plaque progression occurring in susceptible arterial sites, in particular the left main coronary artery (LMCA) bifurcation. Understanding the effects of plaque morphological characteristics: stenosis severity (SS), eccentricity index (EI) and lesion length (LL) on the post-stenotic flow behavior can significantly improve treatment planning. In order to investigate these effects, we have employed computational fluid dynamics (CFD) simulations in twenty computer-generated and five patient-specific LMCA models and the hemodynamic parameters: velocity, pressure (P), wall pressure gradient (WPG), wall shear stress (WSS), time averaged wall shear stress (TAWSS), oscillatory shear index (OSI), relative residence time (RRT) and helicity intensity (h2) were analyzed. Our results revealed that the effect of stenosis eccentricity varied significantly for different values of stenosis severity and lesion length. Regions with low WSS, low TAWSS and high RRT were more prominent in models having higher stenosis severity. For smaller lesion length, at low and moderate stenosis severity, surface area with low TAWSS and high RRT decreased with increasing eccentricity index, whereas for high stenosis severity models, low TAWSS region and average RRT values increased with eccentricity. However, for models with longer lesion length, regions with high OSI and RRT overall increased gradually with eccentricity. The helicity intensity (h2) of all models remained very low except at the most eccentric model with longer lesion length. The presence of very high helical flow in this model suggests the possibility of atheroprotective flow. It can be concluded that all plaque morphological characteristics covered under this investigation play an important role in plaque progression.
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