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

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 di...

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Autores principales: 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
Formato: Online Artículo Texto
Lenguaje:English
Publicado: KeAi Publishing 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9301607/
https://www.ncbi.nlm.nih.gov/pubmed/35892002
http://dx.doi.org/10.1016/j.bioactmat.2022.04.019
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author 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
author_facet 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
author_sort Shi, Xiaodan
collection PubMed
description 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.
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spelling pubmed-93016072022-07-25 Spatial distribution and network morphology of epicardial, endocardial, interstitial, and Purkinje cell-associated elastin fibers in porcine left ventricle 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 Bioact Mater Article 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. KeAi Publishing 2022-04-26 /pmc/articles/PMC9301607/ /pubmed/35892002 http://dx.doi.org/10.1016/j.bioactmat.2022.04.019 Text en © 2022 The Authors https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Article
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
Spatial distribution and network morphology of epicardial, endocardial, interstitial, and Purkinje cell-associated elastin fibers in porcine left ventricle
title Spatial distribution and network morphology of epicardial, endocardial, interstitial, and Purkinje cell-associated elastin fibers in porcine left ventricle
title_full Spatial distribution and network morphology of epicardial, endocardial, interstitial, and Purkinje cell-associated elastin fibers in porcine left ventricle
title_fullStr Spatial distribution and network morphology of epicardial, endocardial, interstitial, and Purkinje cell-associated elastin fibers in porcine left ventricle
title_full_unstemmed Spatial distribution and network morphology of epicardial, endocardial, interstitial, and Purkinje cell-associated elastin fibers in porcine left ventricle
title_short Spatial distribution and network morphology of epicardial, endocardial, interstitial, and Purkinje cell-associated elastin fibers in porcine left ventricle
title_sort spatial distribution and network morphology of epicardial, endocardial, interstitial, and purkinje cell-associated elastin fibers in porcine left ventricle
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9301607/
https://www.ncbi.nlm.nih.gov/pubmed/35892002
http://dx.doi.org/10.1016/j.bioactmat.2022.04.019
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