Grashow Jonathan S, Yoganathan Ajit P, Sacks Michael S
Engineered Tissue Mechanics Laboratory, Department of Bioengineering, McGowan Institute for Regenerative Medicine, University of Pittsburgh, Pittsburgh, PA 15219, USA.
Ann Biomed Eng. 2006 Feb;34(2):315-25. doi: 10.1007/s10439-005-9027-y. Epub 2006 Feb 1.
Characterization of the mechanical properties of the native mitral valve leaflets at physiological strain rates is a critical step in improving our understanding of MV function and providing experimental data for dynamic constitutive models. We explored, for the first time, the effects of strain rate (from quasi-static to physiologic) on the biaxial mechanical properties of the native mitral valve anterior leaflet (MVAL). A novel high-speed biaxial testing device was developed, capable of achieving in vitro strain rates reported for the MVAL (Sacks et al., Ann. Biomed. Eng. 30(10):1280-1290, 2002). Porcine MVAL specimens were loaded to physiological load levels with cycle periods of 15, 1, 0.5, 0.1, and 0.05 s. The resulting loading stress-strain responses were found to be remarkably independent of strain rate. The hysteresis, defined as the fraction of the membrane strain energy between the loading and unloading curves tension-areal stretch curves, was low (approximately 12%) and did not vary with strain rate. The results of the present work indicated that MVAL tissues exhibit complete strain rate insensitivity at and below physiological strain rates under physiological loading conditions. These novel results suggest that experimental tests utilizing quasi-static strain rates are appropriate for constitutive model development for mitral valve tissues. The mechanisms underlying this quasi-elastic behavior are as yet unknown, but are likely an important functional aspect of native mitral valve tissues and clearly warrant further study.
在生理应变率下对天然二尖瓣小叶的力学性能进行表征,是增进我们对二尖瓣功能的理解并为动态本构模型提供实验数据的关键一步。我们首次探究了应变率(从准静态到生理应变率)对天然二尖瓣前叶(MVAL)双轴力学性能的影响。开发了一种新型高速双轴测试装置,能够实现已报道的MVAL体外应变率(Sacks等人,《生物医学工程年鉴》30(10):1280 - 1290, 2002)。将猪MVAL标本加载到生理负荷水平,循环周期分别为15、1、0.5、0.1和0.05秒。结果发现,所得的加载应力 - 应变响应与应变率显著无关。滞后现象(定义为加载和卸载曲线之间膜应变能的分数 - 张力 - 面积拉伸曲线)较低(约12%),且不随应变率变化。本研究结果表明,在生理负荷条件下,MVAL组织在生理应变率及以下表现出完全的应变率不敏感性。这些新结果表明,利用准静态应变率的实验测试适用于二尖瓣组织的本构模型开发。这种准弹性行为背后的机制尚不清楚,但可能是天然二尖瓣组织的一个重要功能方面,显然值得进一步研究。