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Biomechanical and morphological stability of acellular scaffolds for tissue-engineered heart valves depends on different storage conditions

机译:用于组织工程心脏瓣膜的脱细胞支架的生物力学和形态学稳定性取决于不同的储存条件

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摘要

Currently available bioprosthetic heart valves have been successfully used clinically; however, they have several limitations. Alternatively, tissue-engineering techniques can be used. However, there are limited data concerning the impact of storage conditions of scaffolds on their biomechanics and morphology. The aim of this study was to determine the effect of different storage conditions on the biomechanics and morphology of pulmonary valve dedicated for the acellular scaffold preparation to achieve optimal conditions to obtain stable heart valve prostheses. Scaffold can then be used for the construction of tissue-engineered heart valve, for this reason evaluation of these parameters can determine the success of the clinical application this type of bioprosthesis. Pulmonary heart valves were collected from adult porcines. Materials were divided into five groups depending on the storage conditions. Biomechanical tests were performed, both the static tensile test, and examination of viscoelastic properties. Extracellular matrix morphology was evaluated using transmission electron microscopy and immunohistochemistry. Tissue stored at 4 °C exhibited a higher modulus of elasticity than the control (native) and fresh acellular, which indicated the stiffening of the tissue and changes of the viscoelastic properties. Such changes were not observed in the radial direction. Percent strain was not significantly different in the study groups. The storage conditions affected the acellularization efficiency and tissue morphology. To the best of our knowledge, this study is the first that attributes the mechanical properties of pulmonary valve tissue to the biomechanical changes in the collagen network due to different storage conditions. Storage conditions of scaffolds for tissue-engineered heart valves may have a significant impact on the haemodynamic and clinical effects of the used bioprostheses.
机译:目前可获得的生物人工心脏瓣膜已在临床上成功使用;但是,它们有一些限制。或者,可以使用组织工程技术。然而,关于支架储存条件对其生物力学和形态的影响的数据有限。这项研究的目的是确定不同的储存条件对专用于脱细胞支架制备的肺动脉瓣的生物力学和形态的影响,以达到获得稳定的心脏瓣膜假体的最佳条件。然后可以将支架用于组织工程心脏瓣膜的构造,因此对这些参数的评估可以确定这种类型的生物假体在临床上的成功应用。从成年猪收集肺心瓣膜。根据存储条件将材料分为五组。进行了生物力学测试,包括静态拉伸测试和粘弹性能检查。使用透射电子显微镜和免疫组织化学评估细胞外基质的形态。储存在4℃的组织比对照(天然)和新鲜的无细胞组织具有更高的弹性模量,这表明组织变硬和粘弹性变。在径向上未观察到这种变化。在研究组中,应变百分比没有显着差异。储存条件影响脱细胞效率和组织形态。据我们所知,这项研究是第一个将肺动脉瓣组织的机械特性归因于胶原蛋白网络中由于不同储存条件而引起的生物力学变化的研究。用于组织工程心脏瓣膜的支架的储存条件可能会对所用生物假体的血液动力学和临床效果产生重大影响。

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