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猪左心室中心外膜、心内膜、间质和浦肯野细胞相关弹性纤维的空间分布及网络形态

Spatial distribution and network morphology of epicardial, endocardial, interstitial, and Purkinje cell-associated elastin fibers in porcine left ventricle.

作者信息

Shi Xiaodan, Zhang Song, Liu Yue, Brazile Bryn, Cooley Jim, Butler J Ryan, McMahan Sara R, Perez Karla L, Xu Jiazhu, Eastep Timothy, Nguyen Kytai T, Bajona Pietro, Peltz Matthias, Gao Huajian, Hong Yi, Liao Jun

机构信息

Department of Bioengineering, University of Texas at Arlington, Arlington, TX, 76010, USA.

College of Engineering and College of Veterinary Medicine, Mississippi State University, Mississippi State, MS, 39762, USA.

出版信息

Bioact Mater. 2022 Apr 26;19:348-359. doi: 10.1016/j.bioactmat.2022.04.019. eCollection 2023 Jan.

Abstract

Cardiac extracellular matrices (ECM) play crucial functional roles in cardiac biomechanics. Previous studies have mainly focused on collagen, the major structural ECM in heart wall. The role of elastin in cardiac mechanics, however, is poorly understood. In this study, we investigated the spatial distribution and microstructural morphologies of cardiac elastin in porcine left ventricles. We demonstrated that the epicardial elastin network had location- and depth-dependency, and the overall epicardial elastin fiber mapping showed certain correlation with the helical heart muscle fiber architecture. When compared to the epicardial layer, the endocardial layer was thicker and has a higher elastin-collagen ratio and a denser elastin fiber network; moreover, the endocardial elastin fibers were finer and more wavy than the epicardial elastin fibers, all suggesting various interface mechanics. The myocardial interstitial elastin fibers co-exist with the perimysial collagen to bind the cardiomyocyte bundles; some of the interstitial elastin fibers showed a locally aligned, hinge-like structure to connect the adjacent cardiomyocyte bundles. This collagen-elastin combination reflects an optimal design in which the collagen provides mechanical strength and elastin fibers facilitate recoiling during systole. Moreover, cardiac elastin fibers, along with collagen network, closely associated with the Purkinje cells, indicating that this ECM association could be essential in organizing cardiac Purkinje cells into "fibrous" and "branching" morphologies and serving as a protective feature when Purkinje fibers experience large deformations in vivo. In short, our observations provide a structural basis for future in-depth biomechanical investigations and biomimicking of this long-overlooked cardiac ECM component.

摘要

心脏细胞外基质(ECM)在心脏生物力学中发挥着关键的功能作用。以往的研究主要集中在胶原蛋白上,它是心脏壁中主要的结构性细胞外基质。然而,弹性蛋白在心脏力学中的作用却鲜为人知。在本研究中,我们调查了猪左心室中心脏弹性蛋白的空间分布和微观结构形态。我们证明,心外膜弹性蛋白网络具有位置和深度依赖性,并且心外膜弹性蛋白纤维的整体图谱与螺旋状心肌纤维结构存在一定的相关性。与心外膜层相比,心内膜层更厚,弹性蛋白与胶原蛋白的比例更高,弹性蛋白纤维网络更密集;此外,心内膜弹性蛋白纤维比心外膜弹性蛋白纤维更细且更弯曲,所有这些都表明了不同的界面力学特性。心肌间质弹性蛋白纤维与肌束膜胶原蛋白共存,以结合心肌细胞束;一些间质弹性蛋白纤维呈现局部排列的铰链状结构,以连接相邻的心肌细胞束。这种胶原蛋白 - 弹性蛋白的组合反映了一种优化设计,其中胶原蛋白提供机械强度,弹性蛋白纤维在收缩期促进回弹。此外,心脏弹性蛋白纤维与胶原蛋白网络一起,与浦肯野细胞紧密相关,这表明这种细胞外基质关联对于将心脏浦肯野细胞组织成“纤维状”和“分支状”形态可能至关重要,并且在浦肯野纤维在体内经历大变形时起到保护作用。简而言之,我们的观察结果为未来对这种长期被忽视的心脏细胞外基质成分进行深入的生物力学研究和生物模拟提供了结构基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fd1a/9301607/e977a5e72e1c/ga1.jpg

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