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Published on: June 3, 2018
Patient-specific investigation into plaque rupture risk due to catheter tracking during TAVR
David G Symes1, Laoise M McNamara1, Claire Conway2
1Biomedical Engineering, School of Engineering, College of Science and Engineering, University of Galway, Galway, Ireland.
Insights
Finite element modeling reveals transcatheter aortic valve replacement (TAVR) catheter delivery can damage aortic plaque, especially with high burden and intermediate stiffness. Further research is needed to determine plaque rupture stress thresholds.
Area of Science:
- Biomedical Engineering
- Cardiovascular Research
- Medical Imaging Analysis
Background:
- Catheter delivery in transcatheter aortic valve replacement (TAVR) poses risks of aortic plaque damage.
- Current in-vitro methods for assessing catheter trackability do not fully replicate in vivo conditions, including anatomical variations and tissue properties.
Purpose of the Study:
- To investigate potential stresses and contact pressures on the aortic wall and plaques during TAVR catheter delivery using patient-specific finite element (FE) modeling.
- To assess the impact of varying plaque burden and stiffness on these mechanical interactions.
Main Methods:
- Utilized patient-specific FE models of the aorta and plaques, derived from pre-TAVR CT imaging.
- Performed a parameter study varying plaque burden (low, moderate, high) and plaque stiffness (soft, intermediate, stiff).
- Analyzed catheter reaction forces and simulated stress/pressure distributions within the aortic wall and plaques.
Main Results:
- A risk of plaque rupture was identified in one patient with high plaque burden and intermediate stiffness.
- Highly stiff calcified nodules generated significant plaque tissue stresses (6-9 MPa), though rupture thresholds remain unknown.
- Catheter reaction forces showed no consistent difference across varying plaque burden or stiffness, except in one specific patient scenario (Patient 2, high burden, stiff plaque).
Conclusions:
- Patient-specific FE modeling is a valuable tool for assessing risks associated with TAVR catheter delivery.
- High plaque burden and intermediate stiffness present a potential risk for plaque rupture during TAVR.
- Further investigation into the rupture stress thresholds of different plaque types is crucial for improving TAVR safety.
Abstract:
Catheter delivery during transcatheter aortic valve replacement (TAVR) may result in plaque damage in patients with high plaque burden levels. Primarily, catheter tracking performance is measured through in-vitro methods, such as trackability testing, but these cannot account for the in vivo conditions that are dictated by anatomical variation and tissue properties. This study aims to apply patient-specific finite element (FE) modelling to investigate the potential stresses and contact pressures experienced in the aortic wall and by plaques during catheter tracking for TAVR delivery. This study utilised two patient-specific anatomies, derived from pre-TAVR CT imaging, to develop solid aorta and plaque models. A parameter study of plaque burden (low, moderate and high) and plaque stiffness (soft, intermediate and stiff) revealed a risk of plaque rupture only for one of the patients when they had a high plaque burden of intermediate stiffness. Highly stiff calcified nodules lead to very high plaque tissue stresses (6-9 MPa), but the rupture stress threshold for these plaque types remains unknown. We also observe no difference in catheter reaction forces between patients regardless of burden level or plaque stiffness, except for Patient 2's high plaque burden with stiff plaque variation.
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