Laurence Devin, Ross Colton, Jett Samuel, Johns Cortland, Echols Allyson, Baumwart Ryan, Towner Rheal, Liao Jun, Bajona Pietro, Wu Yi, Lee Chung-Hao
Biomechanics and Biomaterials Design Laboratory (BBDL), School of Aerospace and Mechanical Engineering, The University of Oklahoma, Norman, OK 73019, USA.
Center for Veterinary Health Sciences, Oklahoma State University, Stillwater, OK 74078, USA.
J Biomech. 2019 Jan 23;83:16-27. doi: 10.1016/j.jbiomech.2018.11.015. Epub 2018 Nov 16.
The facilitation of proper blood flow through the heart depends on proper function of heart valve components, and alterations to any component can lead to heart disease or failure. Comprehension of these valvular diseases is reliant on thorough characterization of healthy heart valve structures for use in computational models. Previously, computational models have treated these leaflet structures as a structurally and mechanically homogenous material, which may not be an accurate description of leaflet mechanical response. In this study, we aimed to characterize the mechanics of the heart valve leaflet as a structurally heterogenous material. Specifically, porcine mitral valve and tricuspid valve anterior leaflets were sectioned into six regions and biaxial mechanical tests with various loading ratios and stress-relaxation test were performed on each regional tissue sample. Three main findings from this study were summarized as follows: (i) the central regions of the leaflet had a more anisotropic nature than edge regions, (ii) the mitral valve anterior leaflet was more extensible in regions closer to the annulus, and (iii) there was variance in the stress-relaxation behavior among all six regions, with mitral valve leaflet tissue regions exhibiting a greater decay than the tricuspid valve regions. This study presents a novel investigation of the regional variations in the heart valve biomechanics that has not been comprehensively examined. Our results thus allow for a refinement of computational models for more accurately predicting diseased or surgically-intervened condition, where tissue heterogeneity plays an essential role in the heart valve function.
心脏中正常血流的顺畅依赖于心脏瓣膜组件的正常功能,任何组件的改变都可能导致心脏病或心脏衰竭。对这些瓣膜疾病的理解依赖于对健康心脏瓣膜结构进行全面表征,以便用于计算模型。此前,计算模型将这些瓣叶结构视为结构和力学上均一的材料,而这可能并非对瓣叶力学响应的准确描述。在本研究中,我们旨在将心脏瓣膜瓣叶表征为结构上异质的材料。具体而言,将猪二尖瓣和三尖瓣前叶切成六个区域,并对每个区域的组织样本进行不同加载比的双轴力学测试和应力松弛测试。本研究的三个主要发现总结如下:(i)瓣叶的中央区域比边缘区域具有更强的各向异性;(ii)二尖瓣前叶在更靠近瓣环的区域更具延展性;(iii)所有六个区域的应力松弛行为存在差异,二尖瓣瓣叶组织区域的衰减比三尖瓣区域更大。本研究对心脏瓣膜生物力学的区域差异进行了全新的调查,此前尚未得到全面研究。因此,我们的结果有助于完善计算模型,以便更准确地预测患病或手术干预后的情况,其中组织异质性在心脏瓣膜功能中起着至关重要的作用。