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Effects of annular contraction on anterior leaflet strain using an in vitro simulator with a dynamically contracting mitral annulus

机译:用动态收缩二尖瓣凝固器使用体外模拟器环形收缩对前叶菌株的影响

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Abstract Using in vitro models, the mechanics as well as surgical techniques for mitral valves (MV) and MV devices can be studied in a more controlled environment with minimal monetary investment and risk. However, these current models rely on certain simplifications, one being that the MV has a static, rigid annulus. In order to study more complex issues of imaging diagnostics and implanted device function, it would be more advantageous to verify their use for a dynamic environment in a dynamic simulator. This study provides the novel design and development of a dynamically contracting annulus (DCA) within an in vitro simulator, and its subsequent use to study MV biomechanics. Experiments were performed to study the ability of the DCA to reproduce the MV leaflet mechanics in vitro , as seen in vivo , as well as investigate how rigid annuloplasties affect MV leaflet mechanics. Experiments used healthy, excised MVs and normal hemodynamics; contractile waveforms were derived from human in vivo data. Stereophotogrammetry and echocardiography were used to measure anterior leaflet strain and the change in MV geometry. In pursuit of the first in vitro MV simulator that more completely represents the dynamic motion of the full valvular apparatus, this study demonstrated the successful operation of a dynamically contracting mitral annulus. It was seen that the diseased contractile state increased anterior leaflet strain compared to the healthy contractile state. In addition, it was also shown in vitro that simulated rigid annuloplasty increased mitral anterior leaflet strain compared to a healthy contraction.
机译:摘要使用体外模型,可以在更受控的环境中研究二尖瓣(MV)和MV器件的机制以及手术技术,最小的货币投资和风险。然而,这些目前的模型依赖于某些简化,其中MV具有静态的刚性环。为了研究更复杂的成像诊断和植入设备函数的问题,验证其在动态模拟器中的动态环境的用途是更有利的。本研究提供了一种在体外模拟器内动态收缩的环空(DCA)的新颖设计和开发,以及其随后用于研究MV生物力学的用途。进行实验以研究DCA在体外再现MV宣传叶力学的能力,如体内所见,以及研究刚性含环状机构如何影响MV传单力学。实验使用健康,切除的MV和正常血液动力学;收缩波形源自人类体内数据。立体式和超声心动图用于测量前瓣叶菌株和MV几何形状的变化。为了追求第一体外MV模拟器,更完全代表全阀门的动态运动,本研究表明了动态收缩二尖瓣环的成功运行。有人认为,与健康的收缩状态相比,患病的收缩状态增加了前叶菌株。此外,与健康收缩相比,也显示出模拟刚性环形成形术增加的二尖瓣前叶菌株的体外。

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