The influence of vascular anatomy on carotid artery stenting: a parametric study for damage assessment
F Iannaccone1, N Debusschere1, S De Bock1
1IbiTech-bioMMeda, Department of Electronics and Information Systems, iMinds Future Health Department, Ghent University, Belgium.
Abstract:
Carotid artery stenting is emerging as an alternative technique to surgery for the treatment of symptomatic severe carotid stenosis. Clinical and experimental evidence demonstrates that both plaque morphology and biomechanical changes due to the device implantation can be possible causes of an unsuccessful treatment. In order to gain further insights of the endovascular intervention, a virtual environment based on structural finite element simulations was built to emulate the stenting procedure on generalized atherosclerotic carotid geometries which included a damage model to quantify the injury of the vessel. Five possible lesion scenarios were simulated by changing both material properties and vascular geometrical features to cover both presumed vulnerable and stable plaques. The results were analyzed with respect to lumen gain and wall stresses which are potentially related to the failure of the procedure according to previous studies. Our findings show that an elliptic lumen shape and a thinner fibrous cap with an underlying lipid pool result in higher stenosis reduction, while large calcifications and fibrotic tissue are more prone to recoil. The shielding effect of a thicker fibrous cap helps to reduce local compressive stresses in the soft plaque. The presence of a soft plaque reduces the damage in the healthy vascular structures. Contrarily, the presence of hard plaque promotes less damage volume in the fibrous cap and reduces stress peaks in this region, but they seem to increase stresses in the media-intima layer. Finally the reliability of the achieved results was put into clinical perspective.
Insights
Carotid artery stenting outcomes depend on plaque characteristics. Finite element simulations reveal that plaque morphology influences lumen gain and vessel stress, impacting stenting success.
Area of Science:
- Biomedical Engineering
- Cardiovascular Research
- Computational Mechanics
Background:
- Carotid artery stenting (CAS) is an alternative to surgery for severe carotid stenosis.
- Plaque morphology and biomechanical changes during CAS can lead to treatment failure.
- Understanding these factors is crucial for improving CAS outcomes.
Purpose of the Study:
- To investigate the impact of atherosclerotic plaque characteristics on carotid artery stenting outcomes.
- To simulate the stenting procedure using finite element analysis (FEA) with a damage model.
- To analyze the relationship between plaque features, lumen gain, and wall stresses.
Main Methods:
- Developed a virtual environment using structural finite element simulations.
- Emulated CAS on generalized atherosclerotic carotid geometries with varying plaque properties (material and geometry).
- Simulated five lesion scenarios representing vulnerable and stable plaques, quantifying vessel injury.
Main Results:
- Elliptical lumen shape and thinner fibrous caps with lipid pools enhance stenosis reduction.
- Calcifications and fibrotic tissue increase plaque recoil.
- Thicker fibrous caps reduce compressive stress on soft plaques; soft plaques minimize damage to healthy vessels.
- Hard plaques decrease fibrous cap damage but increase stress in the media-intima layer.
Conclusions:
- Plaque composition significantly influences CAS success by affecting lumen gain and biomechanical stress.
- FEA provides valuable insights into predicting CAS outcomes based on lesion characteristics.
- Findings can inform clinical decisions and device development for carotid artery stenting.


