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模拟椭圆形生物瓣变形:对不对称经导管瓣膜植入术的影响。

Simulated elliptical bioprosthetic valve deformation: implications for asymmetric transcatheter valve deployment.

机构信息

Tissue Mechanics Laboratory, Biomedical Engineering Program and Department of Mechanical Engineering, University of Connecticut, Storrs, CT 06269, USA.

出版信息

J Biomech. 2010 Dec 1;43(16):3085-90. doi: 10.1016/j.jbiomech.2010.08.010.

Abstract

The asymmetric, elliptical shape of a transcatheter aortic valve (TAV), after implantation into a calcified aortic root, has been clinically observed. However, the impact of elliptical TAV configuration on TAV leaflet stress and strain distribution and valve regurgitation is largely unknown. In this study, we developed computational models of elliptical TAVs based on a thin pericardial bioprosthetic valve model recently developed. Finite element and computational fluid dynamics simulations were performed to investigate TAV leaflet structural deformation and central backflow leakage, and compared with those of a nominal symmetric TAV. From the results, we found that for a distorted TAV with an elliptical eccentricity of 0.68, the peak stress increased significantly by 143% compared with the nominal circular TAV. When the eccentricity of an elliptical TAV was larger than 0.5, a central backflow leakage was likely to occur. Also, deployment of a TAV with a major calcified region perpendicular to leaflet coaptation line was likely to cause a larger valve leakage. In conclusion, the computational models of elliptical TAVs developed in this study could improve our understanding of the biomechanics involved in a TAV with an elliptical configuration and facilitate optimal design of next-generation TAV devices.

摘要

经临床观察,在植入钙化主动脉根部后,经导管主动脉瓣(TAV)呈现不对称的椭圆形。然而,椭圆形 TAV 结构对 TAV 瓣叶应力和应变分布以及瓣膜反流的影响在很大程度上尚未可知。在这项研究中,我们基于最近开发的一种心包生物瓣模型,开发了椭圆形 TAV 的计算模型。进行了有限元和计算流体动力学模拟,以研究 TAV 瓣叶的结构变形和中心回流泄漏,并与标称对称 TAV 进行了比较。结果表明,对于具有 0.68 椭圆形偏心率的扭曲 TAV,与标称圆形 TAV 相比,峰值应力显著增加了 143%。当椭圆形 TAV 的偏心率大于 0.5 时,可能会发生中心回流泄漏。此外,在与瓣叶对合线垂直的主要钙化区域部署 TAV 可能会导致更大的瓣膜泄漏。总之,本研究中开发的椭圆形 TAV 计算模型可以提高我们对具有椭圆形结构的 TAV 所涉及的生物力学的理解,并有助于下一代 TAV 装置的最佳设计。

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