了解猪二尖瓣小叶组织力学和胶原微观结构之间相互关系的离体实验特征。

D. Fitzpatrick, Kevin Pham, Colton J. Ross, Luke T. Hudson, Devin W. Laurence, Yue Yu, Chung-Hao Lee
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引用次数: 4

摘要

心脏左侧的单向血流由二尖瓣调节。为了更好地了解二尖瓣功能,研究人员检查了二尖瓣小叶的结构和力学特性;然而,先前研究的局限性包括使用改变力学和结构的组织修饰(例如,光学清除),这限制了量化胶原纤维独特的负载依赖性重新定向和重新排列的能力,以及它们与瓣膜组织力学的相互关系。在此,我们旨在通过利用集成偏振光成像和双轴测试系统来了解猪二尖瓣小叶的力学-微观结构相互关系,从而规避这些限制。我们进一步进行了本构建模,并评估了仿射纤维运动学理论的准确性。从组织力学的角度来看,后叶在径向上比前叶更具延展性(径向组织拉伸差异14.2%),同时根据确定的本构模型参数显示出更小的胶原和弹性蛋白模量。从胶原微观结构的角度来看,后叶的光学各向异性增加(与纤维排列程度密切相关)小于前叶(32.8±7.7%对50.0±19.7%)。此外,发现小叶具有两个不同的纤维家族-一个家族沿周向组织方向定向,和另一个更分散的家族,与第一个纤维家族偏移30°-40°。最后,仿射纤维运动学始终低估了胶原纤维的重定向。总体而言,这项研究提高了我们对二尖瓣小叶的理解,这对于促进组织模拟瓣膜置换和心脏瓣膜建模框架至关重要。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Ex vivo experimental characterizations for understanding the interrelationship between tissue mechanics and collagen microstructure of porcine mitral valve leaflets.
Unidirectional blood flow in the left side of the heart is regulated by the mitral valve. To better understand the mitral valve function, researchers have examined the structural and mechanical properties of the mitral valve leaflets; however, limitations of the previous studies include the use of mechanics- and structure-altering tissue modifications (e.g., optical clearing) that limit the ability to quantify the unique load-dependent reorientation and realignment of the collagen fibers as well as their interrelation with the valve tissue mechanics. Herein, we aimed to circumvent these limitations by utilizing an integrated polarized-light imaging and biaxial testing system for understanding the mechanics-microstructure interrelationship for porcine mitral valve leaflets. We further performed constitutive modeling and evaluated the accuracy of the affine fiber kinematics theory. From the tissue mechanics perspective, the posterior leaflet was more extensible in the radial direction than the anterior leaflet (14.2% difference in radial tissue stretch), while exhibiting smaller collagen and elastin moduli based on the determined constitutive model parameters. From the collagen microstructure's standpoint, the posterior leaflet had smaller increases in optical anisotropy (closely related to the degree of fiber alignment) than the anterior leaflet (32.8±7.7% vs. 50.0±19.7%). Further, the leaflets were found to possess two distinct fiber families - one family oriented along the circumferential tissue direction, and another more disperse family with a 30°-40° offset from the first fiber family. Finally, affine fiber kinematics consistently underpredicted the collagen fiber reorientations Overall, this study improved our understanding of the mitral valve leaflets that is essential for facilitating tissue-emulated valve replacement and cardiac valve modeling frameworks.
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