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Updated: Aug 15, 2025

Optical Coherence Tomography Based Biomechanical Fluid-Structure Interaction Analysis of Coronary Atherosclerosis Progression
Published on: January 15, 2022
Potential relationship between high wall shear stress and plaque rupture causing acute coronary syndrome
Yusuke Fukuyama1, Hiromasa Otake2, Fumiyasu Seike3
1Division of Cardiovascular Medicine, Department of Internal Medicine, Kobe University Graduate School of Medicine, 7-5-2 Kusunoki-Cho, Chuo-Ku, Kobe, Hyogo, 650-0017, Japan.
Insights
High wall shear stress (WSS) is linked to plaque rupture (PR) locations in coronary arteries. Computational fluid dynamics simulations reveal WSS patterns associated with specific longitudinal and circumferential plaque rupture sites.
Area of Science:
- Cardiovascular Medicine
- Biomedical Engineering
- Medical Imaging
Background:
- The precise relationship between high wall shear stress (WSS) and plaque rupture (PR) at different locations within coronary arteries is not fully understood.
- Acute coronary syndrome (ACS) patients often present with PR, necessitating a deeper investigation into its biomechanical drivers.
Purpose of the Study:
- To investigate the association between WSS and the longitudinal and circumferential locations of PR in ACS patients.
- To determine if specific WSS patterns correlate with different types of plaque rupture.
Main Methods:
- Utilized optical coherence tomography (OCT) to create 3D coronary artery models for 100 ACS patients with documented PR.
- Employed computational fluid dynamics (CFD) to compute WSS within these patient-specific models.
- Classified PR based on longitudinal (upstream, minimum lumen area, downstream) and circumferential (central, lateral) locations.
Main Results:
- Higher upstream WSS independently correlated with upstream PR, while thinner fibrous caps were linked to downstream PR.
- PR regions exhibited significantly higher average WSS compared to non-ruptured regions.
- In cross-sectional analysis, peak WSS was often found in lateral or central regions, associated with lateral-PR and central-PR, respectively.
Conclusions:
- OCT-based WSS simulations suggest a significant relationship between high WSS and the specific longitudinal and circumferential locations of PR.
- Findings highlight the potential role of biomechanical forces, specifically WSS, in determining the site and characteristics of plaque rupture.
Abstract:
The relationship between high wall shear stress (WSS) and plaque rupture (PR) in longitudinal and circumferential locations remains uncertain. Overall, 100 acute coronary syndrome patients whose culprit lesions had PR, documented by optical coherence tomography (OCT), were enrolled. Lesion-specific three-dimensional coronary artery models were created using OCT data. WSS was computed with computational fluid dynamics analysis. PR was classified into upstream-PR, minimum lumen area-PR, and downstream-PR according to the PR's longitudinal location, and into central-PR and lateral-PR according to the disrupted fibrous cap circumferential location. In the longitudinal 3-mm segmental analysis, multivariate analysis demonstrated that higher WSS in the upstream segment was independently associated with upstream-PR, and thinner fibrous cap was independently associated with downstream-PR. In the PR cross-sections, the PR region had a significantly higher average WSS than non-PR region. In the cross-sectional analysis, the in-lesion peak WSS was frequently observed in the lateral (66.7%) and central regions (70%) in lateral-PR and central-PR, respectively. Multivariate analysis demonstrated that the presence of in-lesion peak WSS at the lateral region, thinner broken fibrous cap, and larger lumen area were independently associated with lateral-PR, while the presence of in-lesion peak WSS at the central region and thicker broken fibrous cap were independently associated with central-PR. In conclusion, OCT-based WSS simulation revealed that high WSS might be related to the longitudinal and circumferential locations of PR.
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