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Multiple-Step Injection Molding for Fibrin-Based Tissue-Engineered Heart Valves

机译:基于纤维蛋白的组织工程心脏瓣膜的多步注塑成型

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摘要

Heart valves are elaborate and highly heterogeneous structures of the circulatory system. Despite the well accepted relationship between the structural and mechanical anisotropy and the optimal function of the valves, most approaches to create tissue-engineered heart valves (TEHVs) do not try to mimic this complexity and rely on one homogenous combination of cells and materials for the whole construct. The aim of this study was to establish an easy and versatile method to introduce spatial diversity into a heart valve fibrin scaffold. We developed a multiple-step injection molding process that enables the fabrication of TEHVs with heterogeneous composition (cell/scaffold material) of wall and leaflets without the need of gluing or suturing components together, with the leaflets firmly connected to the wall. The integrity of the valves and their functionality was proved by either opening/closing cycles in a bioreactor (proof of principle without cells) or with continuous stimulation over 2 weeks. We demonstrated the potential of the method by the two-step molding of the wall and the leaflets containing different cell lines. Immunohistology after stimulation confirmed tissue formation and demonstrated the localization of the different cell types. Furthermore, we showed the proof of principle fabrication of valves using different materials for wall (fibrin) and leaflets (hybrid gel of fibrin/elastin-like recombinamer) and with layered leaflets. The method is easy to implement, does not require special facilities, and can be reproduced in any tissue-engineering lab. While it has been demonstrated here with fibrin, it can easily be extended to other hydrogels.
机译:心脏瓣膜是循环系统的复杂且高度异质的结构。尽管在结构和机械各向异性与瓣膜的最佳功能之间存在公认的关系,但大多数创建组织工程心脏瓣膜(TEHV)的方法并没有试图模仿这种复杂性,而是依靠细胞和材料的一种均匀组合来制造瓣膜。整个构造。这项研究的目的是建立一种简单而通用的方法,将空间多样性引入心脏瓣膜纤维蛋白支架。我们开发了一种多步骤注塑工艺,该工艺可以制造壁和小叶具有异质成分(细胞/支架材料)的TEHV,而无需将组件胶合或缝合在一起,并且小叶牢固地连接到墙壁。阀门的完整性及其功能通过在生物反应器中的打开/关闭循环(无细胞原理证明)或连续刺激2周来证明。我们通过两步成型壁和包含不同细胞系的小叶证明了该方法的潜力。刺激后的免疫组织学证实了组织形成并证实了不同细胞类型的定位。此外,我们展示了使用不同材料制作瓣膜(纤维蛋白)和小叶(纤维蛋白/弹力蛋白样重组蛋白的混合凝胶)以及分层小叶的阀门原理制造的证明。该方法易于实施,不需要特殊的设施,并且可以在任何组织工程实验室中复制。虽然已在此处用血纤蛋白证明了它,但它可以轻松扩展到其他水凝胶。

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