a Cardiology Centre and Cardiovascular Surgery Department , Institute for Clinical and Experimental Medicine , Prague , Czech Republic.
b Department of Biomaterials and Tissue Engineering , Institute of Physiology, Academy of Sciences of the Czech Republic , Prague , Czech Republic.
J Biomater Sci Polym Ed. 2018 Apr;29(6):599-634. doi: 10.1080/09205063.2018.1429732. Epub 2018 Jan 30.
The objective of our study was to compare the cellular and extracellular matrix (ECM) structure and the biomechanical properties of human pericardium (HP) with the normal human aortic heart valve (NAV). HP tissues (from 12 patients) and NAV samples (from 5 patients) were harvested during heart surgery. The main cells in HP were pericardial interstitial cells, which are fibroblast-like cells of mesenchymal origin similar to the valvular interstitial cells in NAV tissue. The ECM of HP had a statistically significantly (p < 0.001) higher collagen I content, a lower collagen III and elastin content, and a similar glycosaminoglycans (GAGs) content, in comparison with the NAV, as measured by ECM integrated density. However, the relative thickness of the main load-bearing structures of the two tissues, the dense part of fibrous HP (49 ± 2%) and the lamina fibrosa of NAV (47 ± 4%), was similar. In both tissues, the secant elastic modulus (Es) was significantly lower in the transversal direction (p < 0.05) than in the longitudinal direction. This proved that both tissues were anisotropic. No statistically significant differences in UTS (ultimate tensile strength) values and in calculated bending stiffness values in the longitudinal or transversal direction were found between HP and NAV. Our study confirms that HP has an advantageous ECM biopolymeric structure and has the biomechanical properties required for a tissue from which an autologous heart valve replacement may be constructed.
本研究旨在比较人类心包(HP)与正常人类主动脉心脏瓣膜(NAV)的细胞和细胞外基质(ECM)结构以及生物力学特性。HP 组织(来自 12 名患者)和 NAV 样本(来自 5 名患者)在心外科手术中采集。HP 中的主要细胞是心包间质细胞,其为类似于 NAV 组织中瓣膜间质细胞的间充质来源的成纤维细胞样细胞。通过 ECM 积分密度测量,与 NAV 相比,HP 的 ECM 具有统计学上显著(p < 0.001)更高的胶原 I 含量、更低的胶原 III 和弹性蛋白含量以及相似的糖胺聚糖(GAG)含量。然而,两种组织的主要承载结构的相对厚度相似,即 HP 的致密纤维部分(49 ± 2%)和 NAV 的纤维层(47 ± 4%)。在两种组织中,横向的割线弹性模量(Es)均明显低于纵向(p < 0.05)。这证明了两种组织均具有各向异性。在 HP 和 NAV 之间,无论是在纵向还是横向,UTS(最大拉伸强度)值和计算出的弯曲刚度值均无统计学差异。我们的研究证实,HP 具有有利的 ECM 生物聚合物结构,并且具有构建自体心脏瓣膜替代物所需的生物力学特性。