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临床相关椭圆变形对生物人工心脏瓣膜中脱垂和拉伸瓣叶损伤模式的影响

Impact of Clinically Relevant Elliptical Deformations on the Damage Patterns of Sagging and Stretched Leaflets in a Bioprosthetic Heart Valve.

作者信息

Sritharan Deepa, Fathi Parinaz, Weaver Jason D, Retta Stephen M, Wu Changfu, Duraiswamy Nandini

机构信息

Division of Applied Mechanics (DAM), Office of Science and Engineering Laboratories (OSEL), Center for Devices and Radiological Health (CDRH), Food and Drug Administration (FDA), 10903 New Hampshire Avenue, WO62, #2206, Silver Spring, MD, 20993, USA.

Division of Cardiovascular Devices (DCD), Office of Device Evaluation (ODE), Center for Devices and Radiological Health (CDRH), Food and Drug Administration (FDA), 10903 New Hampshire Avenue, Silver Spring, MD, 20993, USA.

出版信息

Cardiovasc Eng Technol. 2018 Sep;9(3):351-364. doi: 10.1007/s13239-018-0366-x. Epub 2018 Jun 12.

Abstract

After implantation of a transcatheter bioprosthetic heart valve its original circular circumference may become distorted, which can lead to changes in leaflet coaptation and leaflets that are stretched or sagging. This may lead to early structural deterioration of the valve as seen in some explanted transcatheter heart valves. Our in vitro study evaluates the effect of leaflet deformations seen in elliptical configurations on the damage patterns of the leaflets, with circular valve deformation as the control. Bovine pericardial tissue heart valves were subjected to accelerated wear testing under both circular (N = 2) and elliptical (N = 4) configurations. The elliptical configurations were created by placing the valve inside custom-made elliptical holders, which caused the leaflets to sag or stretch. The hydrodynamic performance of the valves was monitored and high resolution images were acquired to evaluate leaflet damage patterns over time. In the elliptically deformed valves, sagging leaflets experienced more damage from wear compared to stretched leaflets; the undistorted leaflets of the circular valves experienced the least leaflet damage. Free-edge thinning and tearing were the primary modes of damage in the sagging leaflets. Belly region thinning was seen in the undistorted and stretched leaflets. Leaflet and fabric tears at the commissures were seen in all valve configurations. Free-edge tearing and commissure tears were the leading cause of valve hydrodynamic incompetence. Our study shows that mechanical wear affects heart valve pericardial leaflets differently based on whether they are undistorted, stretched, or sagging in a valve configuration. Sagging leaflets are more likely to be subjected to free-edge tear than stretched or undistorted leaflets. Reducing leaflet stress at the free edge of non-circular valve configurations should be an important factor to consider in the design and/or deployment of transcatheter bioprosthetic heart valves to improve their long-term performance.

摘要

经导管生物人工心脏瓣膜植入后,其原本的圆形周长可能会变形,这可能导致瓣叶对合的改变以及瓣叶出现拉伸或下垂。这可能会导致瓣膜早期结构退化,如在一些取出的经导管心脏瓣膜中所见。我们的体外研究以圆形瓣膜变形为对照,评估椭圆形结构中瓣叶变形对瓣叶损伤模式的影响。牛心包组织心脏瓣膜在圆形(N = 2)和椭圆形(N = 4)结构下进行加速磨损测试。椭圆形结构是通过将瓣膜放置在定制的椭圆形固定器中形成的,这会导致瓣叶下垂或拉伸。监测瓣膜的流体动力学性能,并获取高分辨率图像以评估随时间的瓣叶损伤模式。在椭圆形变形的瓣膜中,与拉伸的瓣叶相比,下垂的瓣叶磨损损伤更大;圆形瓣膜未变形的瓣叶损伤最小。游离缘变薄和撕裂是下垂瓣叶的主要损伤模式。在未变形和拉伸的瓣叶中可见腹部区域变薄。在所有瓣膜结构中均可见瓣叶和织物在瓣环处撕裂。游离缘撕裂和瓣环撕裂是瓣膜流体动力学功能不全的主要原因。我们的研究表明,机械磨损对心脏瓣膜心包瓣叶的影响因瓣叶在瓣膜结构中是否未变形、拉伸或下垂而有所不同。下垂的瓣叶比拉伸或未变形的瓣叶更易出现游离缘撕裂。在经导管生物人工心脏瓣膜的设计和/或部署中,减少非圆形瓣膜结构游离缘处的瓣叶应力应是提高其长期性能需考虑的重要因素。

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