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经导管主动脉瓣置换术的患者特异性浸入有限元差分模型。

Patient-Specific Immersed Finite Element-Difference Model of Transcatheter Aortic Valve Replacement.

机构信息

Department of Mathematics, University of North Carolina, Chapel Hill, NC, USA.

University of North Carolina School of Medicine, Chapel Hill, NC, USA.

出版信息

Ann Biomed Eng. 2023 Jan;51(1):103-116. doi: 10.1007/s10439-022-03047-3. Epub 2022 Oct 20.

Abstract

Transcatheter aortic valve replacement (TAVR) first received FDA approval for high-risk surgical patients in 2011 and has been approved for low-risk surgical patients since 2019. It is now the most common type of aortic valve replacement, and its use continues to accelerate. Computer modeling and simulation (CM&S) is a tool to aid in TAVR device design, regulatory approval, and indication in patient-specific care. This study introduces a computational fluid-structure interaction (FSI) model of TAVR with Medtronic's CoreValve Evolut R device using the immersed finite element-difference (IFED) method. We perform dynamic simulations of crimping and deployment of the Evolut R, as well as device behavior across the cardiac cycle in a patient-specific aortic root anatomy reconstructed from computed tomography (CT) image data. These IFED simulations, which incorporate biomechanics models fit to experimental tensile test data, automatically capture the contact within the device and between the self-expanding stent and native anatomy. Further, we apply realistic driving and loading conditions based on clinical measurements of human ventricular and aortic pressures and flow rates to demonstrate that our Evolut R model supports a physiological diastolic pressure load and provides informative clinical performance predictions.

摘要

经导管主动脉瓣置换术(TAVR)于 2011 年首次获得美国食品药品监督管理局(FDA)批准用于高危手术患者,自 2019 年起已批准用于低危手术患者。它现在是最常见的主动脉瓣置换类型,其使用持续加速。计算机建模和仿真(CM&S)是一种工具,可辅助 TAVR 设备设计、监管审批以及在特定于患者的护理中确定适应证。本研究使用浸入式有限元差分(IFED)方法,引入了 Medtronic 的 CoreValve Evolut R 设备的 TAVR 计算流体-结构相互作用(FSI)模型。我们对 Evolut R 的卷曲和展开进行了动态模拟,以及在从 CT 图像数据重建的特定于患者的主动脉根部解剖结构中跨心动周期的设备行为。这些 IFED 模拟采用与实验拉伸测试数据拟合的生物力学模型,自动捕获设备内以及自扩张支架和天然解剖结构之间的接触。此外,我们根据人体心室和主动脉压力以及流量的临床测量值施加真实的驱动和加载条件,以证明我们的 Evolut R 模型支持生理舒张压力负荷,并提供有意义的临床性能预测。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/66ea/9832092/9224a063c408/10439_2022_3047_Fig1_HTML.jpg

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