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Updated: Mar 26, 2026

Microfluidics in Assessing Platelet Function
Published on: November 8, 2024
Computational simulation of platelet interactions in the initiation of stent thrombosis due to stent malapposition
Jennifer K W Chesnutt1, Hai-Chao Han1,2
1Cardiovascular Biomechanics Laboratory, Department of Mechanical Engineering, The University of Texas at San Antonio, San Antonio, TX, USA.
Insights
Stent malapposition in coronary arteries can lead to thrombosis. This study used a discrete element model to show that the gap distance between the stent and artery wall influences thrombus formation differently based on factors like shear stress and endothelial condition.
Area of Science:
- Cardiovascular research
- Biomedical engineering
- Computational fluid dynamics
Background:
- Coronary stenting is a common treatment for atherosclerosis.
- Stent malapposition is a known risk factor for stent thrombosis.
- The microscopic mechanisms linking malapposition to thrombosis remain unclear.
Purpose of the Study:
- To investigate the platelet-level processes of stent thrombosis initiation.
- To determine how varying degrees of stent malapposition affect thrombus formation.
- To elucidate the role of endothelial condition and shear stress in malapposition-induced thrombosis.
Main Methods:
- Utilized a discrete element model to simulate blood flow and cellular interactions.
- Modeled thousands of individual platelets and red blood cells in stented coronary arteries.
- Simulated different stent malapposition gap distances (0-200 μm) and varying endothelial conditions.
Main Results:
- Thrombus formation varied significantly with malapposition gap distance.
- Without shear-induced platelet activation, larger gaps produced less thrombus.
- With shear-induced activation, intermediate gaps (e.g., 25 μm) were most thrombogenic, challenging assumptions about larger gaps being worst.
- Factors like fluid recirculation, platelet trajectories, shear stress, and endothelial health modulated thrombosis severity.
Conclusions:
- The relationship between stent malapposition severity and thrombosis is complex and multifactorial.
- Large malapposition gaps are not always the most thrombogenic.
- Understanding these platelet-level dynamics is crucial for mitigating stent thrombosis risk.
Abstract:
Coronary stenting is one of the most commonly used approaches to open coronary arteries blocked due to atherosclerosis. Stent malapposition can induce thrombosis but the microscopic process is poorly understood. The objective of this study was to determine the platelet-level process by which different extents of stent malapposition affect the initiation of stent thrombosis. We utilized a discrete element model to computationally simulate the transport, adhesion, and activation of thousands of individual platelets and red blood cells during thrombus initiation in stented coronary arteries. Simulated arteries contained a malapposed stent with a specified gap distance (0, 10, 25, 50, or 200 μm) between the struts and endothelium. Platelet-level details of thrombus formation near the proximal-most strut were measured during the simulations. The relationship between gap distance and amount of thrombus in the artery varied depending on different conditions (e.g., amount of dysfunctional endothelium, shear-induced activation of platelets, and thrombogenicity of the strut). Without considering shear-induced platelet activation, the largest gap distance (200 μm) produced no recirculation and less thrombus than the smallest two gap distances (0 and 10 μm) that created recirculation downstream of the strut. However, with the occurrence of shear-induced platelet activation, the largest gap distance produced more thrombus than the two smallest gap distances, but less thrombus than an intermediate gap distance (25 μm). A large gap distance was not necessarily the most thrombogenic, in contrast to implications of some computational fluid dynamics studies. The severity of stent malapposition affected initial stent thrombosis differently depending on various factors related to fluid recirculation, platelet trajectories, shear stress, and endothelial condition.
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