Soares Joao S, Feaver Kristen R, Zhang Will, Kamensky David, Aggarwal Ankush, Sacks Michael S
Center for Cardiovascular Simulation, Institute for Computational Engineering and Sciences, Department of Biomedical Engineering, The University of Texas at Austin, 201 East 24th Street, Stop C0200, Austin, TX, 78712-1129, USA.
College of Engineering, Swansea University, Bay Campus, Fabian Way, Swansea, SA1 8EN, UK.
Cardiovasc Eng Technol. 2016 Dec;7(4):309-351. doi: 10.1007/s13239-016-0276-8. Epub 2016 Aug 9.
The use of replacement heart valves continues to grow due to the increased prevalence of valvular heart disease resulting from an ageing population. Since bioprosthetic heart valves (BHVs) continue to be the preferred replacement valve, there continues to be a strong need to develop better and more reliable BHVs through and improved the general understanding of BHV failure mechanisms. The major technological hurdle for the lifespan of the BHV implant continues to be the durability of the constituent leaflet biomaterials, which if improved can lead to substantial clinical impact. In order to develop improved solutions for BHV biomaterials, it is critical to have a better understanding of the inherent biomechanical behaviors of the leaflet biomaterials, including chemical treatment technologies, the impact of repetitive mechanical loading, and the inherent failure modes. This review seeks to provide a comprehensive overview of these issues, with a focus on developing insight on the mechanisms of BHV function and failure. Additionally, this review provides a detailed summary of the computational biomechanical simulations that have been used to inform and develop a higher level of understanding of BHV tissues and their failure modes. Collectively, this information should serve as a tool not only to infer reliable and dependable prosthesis function, but also to instigate and facilitate the design of future bioprosthetic valves and clinically impact cardiology.
由于人口老龄化导致心脏瓣膜疾病患病率上升,人工心脏瓣膜的使用持续增加。由于生物人工心脏瓣膜(BHVs)仍然是首选的置换瓣膜,因此迫切需要通过深入了解BHV失效机制来开发更好、更可靠的BHVs。BHV植入物使用寿命的主要技术障碍仍然是组成瓣叶生物材料的耐久性,如果能加以改进,将产生重大的临床影响。为了开发改进的BHV生物材料解决方案,关键是要更好地了解瓣叶生物材料的固有生物力学行为,包括化学处理技术、重复机械加载的影响以及固有失效模式。本综述旨在全面概述这些问题,重点是深入了解BHV功能和失效机制。此外,本综述详细总结了计算生物力学模拟,这些模拟有助于深入了解BHV组织及其失效模式。总体而言,这些信息不仅应作为推断可靠假体功能的工具,还应激发并促进未来生物人工瓣膜的设计,并对心脏病学产生临床影响。