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In Vitro Dynamic Strain Behavior of the Mitral Valve Posterior Leaflet

机译:二尖瓣后叶的体外动态应变行为

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Knowledge of mitral valve (MV) mechanics is essential for the understanding of normal MV function, and the design and evaluation of new surgical repair procedures. In the present study, we extended our investigation of MV dynamic strain behavior to quantify the dynamic strain on the central region of the posterior leaflet. Native porcine MVs were mounted in an in-vitro physiologic flow loop. The papillary muscle (PM) positions were set to the normal, taut, and slack states to simulate physiological and pathological PM positions. Leaflet deformation was measured by tracking the displacements of 16 small markers placed in the central region of the posterior leaflet. Local leaflet tissue strain and strain rates were calculated from the measured displacements under dynamic loading conditions. A total of 18 mitral valves were studied. Our findings indicated the following: (1) There was a rapid rise in posterior leaflet strain during valve closure followed by a plateau where no additional strain (i.e., no creep) occurred. (2) The strain field was highly anisotropic with larger stretches and stretch rates in the radial direction. There were negligible stretches, or even compression (stretch<1) in the circumferential direction at the beginning of valve closure. (3) The areal strain curves were similar to the stretches in the trends. The posterior leaflet showed no significant differences in either peak stretches or stretch rates during valve closure between the normal, taut, and slack PM positions. (4) As compared with the anterior leaflet, the posterior leaflet demonstrated overall lower stretch rates in the normal PM position. However, the slack and taut PM positions did not demonstrate the significant difference in the stretch rates and areal strain rates between the posterior leaflet and the anterior leaflet. The MV posterior leaflet exhibited pronounced mechanically anisotropic behavior. Loading rates of the MV posterior leaflet were very high. The PM positions influenced neither peak stretch nor stretch rates in the central area of the posterior leaflet. The stretch rates and areal strain rates were significantly lower in the posterior leaflet than those measured in the anterior leaflet in the normal PM position. However, the slack and taut PM positions did not demonstrate the significant differences between the posterior leaflet and the anterior leaflet. We conclude that PM positions may influence the posterior strain in a different way as compared to the anterior leaflet.
机译:二尖瓣(MV)力学知识对于理解正常的MV功能以及设计和评估新的外科修复程序至关重要。在本研究中,我们扩展了对MV动态应变行为的研究,以量化后部小叶中心区域的动态应变。将天然猪MV安装在体外生理流动环中。将乳头肌(PM)位置设置为正常,绷紧和松弛状态,以模拟生理和病理性PM位置。通过跟踪放置在后小叶中心区域的16个小标记的位移来测量小叶变形。在动态载荷条件下,根据测得的位移计算局部小叶组织的应变和应变率。共研究了18个二尖瓣。我们的发现表明以下几点:(1)在瓣膜关闭过程中,后小叶的应变迅速升高,随后达到平稳期,此时没有其他应变(即没有蠕变)发生。 (2)应变场是高度各向异性的,在径向上具有较大的拉伸和拉伸速率。在阀门关闭开始时,在周向上的拉伸很小,甚至压缩(拉伸<1)。 (3)面应变曲线与趋势曲线相似。在正常,绷紧和松弛的PM位置之间,后瓣叶在瓣膜闭合期间的峰值舒张或舒张速率均无显着差异。 (4)与前小叶相比,后小叶在正常PM位置表现出总体较低的拉伸率。但是,松弛和绷紧的PM位置并未证明后小叶和前小叶之间的拉伸率和面应变率有显着差异。 MV后叶表现出明显的机械各向异性行为。 MV后叶的负荷率非常高。 PM位置既不影响后小叶中央区域的峰值拉伸也不影响拉伸速率。在正常PM位置,后叶的拉伸率和面应变率显着低于前叶的测量值。然而,松弛和绷紧的PM位置并没有证明后小叶和前小叶之间的显着差异。我们得出的结论是,与前小叶相比,PM位置可能以不同的方式影响后部应变。

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