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Electrospinning of nanofibres for construction of vital organ replacements

机译:纳米纤维的静电纺丝,用于建设重要器官替代品

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This paper described the production of a novel biosynthetic materials using the manufacturing technique of electrospinning for the construction of scaffold for organ replacement. This electrostatic technique uses an electric field to control the deposition of polymer fibres onto a specific substrate to fabricate fibrous polymer constructs composed of fibre diameters ranging from several microns down to 100 nm or less. Two areas of research, in particular, heart valve leaflets and blood vessel will be discussed. Here, a sandwich structure nanofibre mesh was used to construct materials for leaflets of heart valve and blood vessel. In the case of heart valve leaflet, the randomly oriented polyurethane nanofibres were prepared as the first layer, followed by gelatin- chitosan complex layer. Complex nanofibres were initially used to spin on the PU layer with cross orientation to mimic the fibrosa layer. A gelatin and chitosan complex was then spun onto the other side of PU nanofibre mesh to mimic the ventricular is layer. This particular sandwich structure using the PU layer was designed to simulate the mechanical properties of natural tissue. In addition, this design was aimed to provide good biocompatibility and improved cellular environment to assist in adhesion and proliferation. Smooth muscle cells adhered and flattened out onto the surface of the gelatin-chitosan complex as early as 1 day post seeding. There is great potential for this biosynthetic biocompatible nanofibrous material to be developed for various clinical applications.
机译:本文描述了使用静电纺丝制造技术的新型生物合成材料的生产,用于器官更换器官。该静电技术使用电场来控制聚合物纤维沉积到特定基材上,以制造由纤维直径组成的纤维聚合物构建体,该纤维直径范围为100nm或更小。将讨论两个研究领域,特别是心脏瓣膜传单和血管。这里,使用夹层结构纳米纤维网来构建用于心脏瓣膜和血管的小叶的材料。在心脏瓣膜瓣叶的情况下,将随机取向的聚氨酯纳米纤维作为第一层制备,其次是明胶 - 壳聚糖复合层。最初使用复合纳米纤维,以通过交叉取向旋转在PU层上以模拟纤维组层。然后将明胶和壳聚糖复合物旋转到Pu nanofibre网的另一侧以模拟心室是层。使用PU层的这种特殊的夹层结构被设计成模拟天然组织的机械性能。此外,这种设计旨在提供良好的生物相容性和改善的细胞环境,以帮助粘附和增殖。早在播种后1天,平滑肌细胞粘附并达到明胶 - 壳聚糖复合物的表面。这种生物相容的纳米纤维材料具有很大的潜力,用于各种临床应用。

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