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Updated: Oct 15, 2025

Optical Coherence Tomography Based Biomechanical Fluid-Structure Interaction Analysis of Coronary Atherosclerosis Progression
Published on: January 15, 2022
Effect of plaque compositions on fractional flow reserve in a fluid-structure interaction analysis
Chulin Wu1, Xiujian Liu1, Dhanjoo Ghista2
1School of Biomedical Engineering, Sun Yat-sen University, Shenzhen, 518107, China.
Insights
Atherosclerotic plaque composition impacts myocardial ischemia by affecting fractional flow reserve (FFR). Lipid plaques show lower FFR than fibrous or calcified plaques, especially with increased stenosis.
Area of Science:
- Cardiovascular Medicine
- Biomedical Engineering
- Computational Fluid Dynamics
Background:
- Coronary artery disease (CAD) is characterized by reduced blood flow to the heart muscle due to atherosclerotic plaques.
- A mismatch often exists between coronary artery stenosis severity and myocardial ischemia indicators like fractional flow reserve (FFR).
- Atherosclerotic plaque composition is increasingly recognized as a critical factor influencing ischemia.
Purpose of the Study:
- To investigate the relationship between coronary atherosclerotic plaque composition and myocardial ischemia.
- To assess the impact of plaque composition on FFR using a novel patient-specific computational model.
Main Methods:
- Developed and utilized a 3D fluid-structure interaction (FSI) patient-specific coronary plaque model based on computed tomography angiography data.
- Performed 180 analyses varying plaque composition, location, and stenosis degree.
- Validated the model through hemodynamic analysis and comparison with existing methods.
Main Results:
- Different plaque compositions significantly influenced calculated FFR values.
- Lipid plaques exhibited lower mean FFR ([Formula: see text]) compared to fibrous ([Formula: see text]) and calcified ([Formula: see text]) plaques.
- The disparity in FFR among plaque types increased with greater diameter stenosis.
Conclusions:
- Plaque composition directly affects vascular mechanics (stiffness, dilation), influencing stenosis severity and FFR.
- This understanding can aid in diagnosing the causes of high-risk coronary artery disease and myocardial ischemia.
Abstract:
Coronary artery disease involves the reduction of blood flow to the myocardium due to atherosclerotic plaques. The findings of myocardial ischemia may indicate severe coronary stenosis, but many studies have demonstrated a mismatch between lumen stenosis and fractional flow reserve (FFR). Recently, some clinical studies have found that the composition of atherosclerotic plaques may be a potential missing link between stenosis and ischemia. To investigate the relationship between myocardial ischemia and plaque composition, we have developed and adopted a new fluid-structure interaction (FSI) patient-specific coronary plaque model, based on computed tomography angiography data, to assess the impact on FFR as a biomechanical indicator of ischemia. A total of 180 analyses have been performed in 3D-FSI coronary artery disease models based on plaque compositions, plaque location, and stenosis degree. Hemodynamic analysis of simulation results and comparisons with other methods has been conducted to validate our models. Our results have successfully verified that the different compositions of plaques have resulted in differences in the calculated FFR. The mean FFR values with lipid plaques are [Formula: see text] as compared to the mean FFR values in lesions with fibrous plaques [Formula: see text] and calcified plaques [Formula: see text]. Besides, FFR differences between the three different plaque compositions have been shown to increase as the diameter stenosis increased. Plaque composition affects vascular stiffness and vascular dilation ability, and thereby affects the stenosis degree, resulting in abnormal FFR leading to myocardial ischemia. This interrelationship can help to diagnose the cause of high-risk coronary artery disease, leading to myocardial ischemia.
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