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具有模仿胚胎基质弹性的水凝胶支架可促进心脏细胞网络形成。

Hydrogel scaffolds with elasticity-mimicking embryonic substrates promote cardiac cellular network formation.

作者信息

Alonzo Matthew, Kumar Shweta Anil, Allen Shane, Delgado Monica, Alvarez-Primo Fabian, Suggs Laura, Joddar Binata

机构信息

Inspired Materials and Stem-Cell Based Tissue Engineering Laboratory (IMSTEL), El Paso, USA.

Department of Metallurgical, Materials and Biomedical Engineering, M201 Engineering, The University of Texas at El Paso, 500 W University Avenue, El Paso, TX, 79968, USA.

出版信息

Prog Biomater. 2020 Sep;9(3):125-137. doi: 10.1007/s40204-020-00137-0. Epub 2020 Sep 25.

DOI:10.1007/s40204-020-00137-0
PMID:32978746
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC7544760/
Abstract

Hydrogels are a class of biomaterials used for a wide range of biomedical applications, including as a three-dimensional (3D) scaffold for cell culture that mimics the extracellular matrix (ECM) of native tissues. To understand the role of the ECM in the modulation of cardiac cell function, alginate was used to fabricate crosslinked gels with stiffness values that resembled embryonic (2.66 ± 0.84 kPa), physiologic (8.98 ± 1.29 kPa) and fibrotic (18.27 ± 3.17 kPa) cardiac tissues. The average pore diameter and hydrogel swelling were seen to decrease with increasing substrate stiffness. Cardiomyocytes cultured within soft embryonic gels demonstrated enhanced cell spreading, elongation, and network formation, while a progressive increase in gel stiffness diminished these behaviors. Cell viability decreased with increasing hydrogel stiffness. Furthermore, cells in fibrotic gels showed enhanced protein expression of the characteristic cardiac stress biomarker, Troponin-I, while reduced protein expression of the cardiac gap junction protein, Connexin-43, in comparison to cells within embryonic gels. The results from this study demonstrate the role that 3D substrate stiffness has on cardiac tissue formation and its implications in the development of complex matrix remodeling-based conditions, such as myocardial fibrosis.

摘要

水凝胶是一类用于广泛生物医学应用的生物材料,包括作为用于细胞培养的三维(3D)支架,模拟天然组织的细胞外基质(ECM)。为了了解ECM在调节心脏细胞功能中的作用,使用藻酸盐制备具有类似于胚胎(2.66±0.84kPa)、生理(8.98±1.29kPa)和纤维化(18.27±3.17kPa)心脏组织硬度值的交联凝胶。随着底物硬度的增加,平均孔径和水凝胶溶胀减小。在柔软的胚胎凝胶中培养的心肌细胞表现出增强的细胞铺展、伸长和网络形成,而凝胶硬度的逐渐增加则减少了这些行为。细胞活力随着水凝胶硬度的增加而降低。此外,与胚胎凝胶中的细胞相比,纤维化凝胶中的细胞显示出特征性心脏应激生物标志物肌钙蛋白-I的蛋白表达增强,而心脏间隙连接蛋白连接蛋白-43的蛋白表达降低。这项研究的结果证明了3D底物硬度对心脏组织形成的作用及其在基于复杂基质重塑的病症(如心肌纤维化)发展中的意义。

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