School of Mechanical and Materials Engineering, University College Dublin, Dublin, Ireland; SFI I-Form Centre, University College Dublin, Dublin, Ireland.
School of Mechanical and Materials Engineering, University College Dublin, Dublin, Ireland; Mechanobiology and Medical Device Research Group, Department of Biomedical Engineering, University of Galway, Galway, Ireland.
J Mech Behav Biomed Mater. 2024 Sep;157:106650. doi: 10.1016/j.jmbbm.2024.106650. Epub 2024 Jul 8.
The assessment of stent fatigue in Transcatheter Aortic Valve Replacement (TAVR) systems is critical for the design of next-generation devices, both in vitro and in vivo. The mechanical properties of the bioprosthetic heart valves (BHVs) have a significant impact on the fatigue life of the metallic stent and thus must be taken into consideration when evaluating new TAVR device designs. This study aims to investigate the relationship between BHV anisotropic behaviour and the asymmetric deflections of the stent frame observed during in vitro testing. An explicit dynamics finite element model of the nitinol stent with attached bioprosthetic valve leaflets was developed to evaluate the deflections of the TAVR device under haemodynamic loading. Our results demonstrate that pericardium behaviour plays a dominant role in determining stent frame deflection. The anisotropic behaviour of the leaflets, resulting from collagen fibre orientation, affects the extent of deflection encountered by each commissure of the frame. This leads to asymmetric variation in frame deflection that can influence the overall fatigue life of the nitinol stent. This study highlights the importance of considering both the flexible nature of the metallic stent as well as the leaflet anisotropic behaviour in the design and fatigue assessment of TAVR systems.
经导管主动脉瓣置换(TAVR)系统中支架疲劳的评估对于下一代器械的设计至关重要,无论是在体外还是体内。生物瓣(BHV)的机械性能对金属支架的疲劳寿命有重大影响,因此在评估新的 TAVR 器械设计时必须考虑到这一点。本研究旨在研究 BHV 各向异性行为与体外测试中观察到的支架框架不对称变形之间的关系。开发了一个带有附着生物瓣叶的镍钛诺支架的显式动力学有限元模型,以评估血流动力学载荷下 TAVR 装置的变形。研究结果表明,心包膜行为在确定支架框架变形方面起着主导作用。由于胶原纤维取向导致的瓣叶各向异性行为会影响框架每个连合处遇到的变形程度。这导致框架变形的不对称变化,可能会影响镍钛诺支架的整体疲劳寿命。本研究强调了在 TAVR 系统的设计和疲劳评估中,既要考虑金属支架的柔韧性,也要考虑瓣叶各向异性行为的重要性。