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首页> 外文期刊>Journal of the mechanical behavior of biomedical materials >Manipulating the structure and mechanical properties of thermoplastic polyurethane/polycaprolactone hybrid small diameter vascular scaffolds fabricated via electrospinning using an assembled rotating collector
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Manipulating the structure and mechanical properties of thermoplastic polyurethane/polycaprolactone hybrid small diameter vascular scaffolds fabricated via electrospinning using an assembled rotating collector

机译:使用组装旋转收集器通过静电纺丝制造的热塑性聚氨酯/聚己内酯杂交小直径血管支架的结构和力学性能

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Abstract The success of blood vessel transplants with vascular scaffolds (VSs) highly depends on their structure and mechanical properties. The fabrication of small diameter vascular scaffolds (SDVSs) mimicking the properties of native blood vessels has been a challenge. Herein, we propose a facile method to fabricate thermoplastic polyurethane (TPU)/polycaprolactone (PCL) hybrid SDVSs via electrospinning using a modified rotating collector. By varying the ratio between the TPU and the PCL, and changing the electrospinning volume, SDVSs with a wavy configuration and different properties could be obtained. Detailed investigation revealed that certain TPU/PCL hybrid SDVSs closely resembled the mechanical behaviors of blood vessels due to the presence of a wavy region and the combination of flexible TPU and rigid PCL, which mimicked the properties of elastin and collagen in blood vessels. The fabricated TPU/PCL SDVSs achieved lumen diameters of 1–3mm, wall thicknesses of 100–570μm, circumferential moduli of 1–6MPa, ultimate strengths of 2–8MPa, over 250% elongation-at-break values, toe regions of 5.3–9.4%, high recoverability, and compliances close to those of human veins. Moreover, these TPU/PCL SDVSs possessed sufficient suture retention strength and burst pressure to fulfill transplantation requirements and maintain normal blood flow. Human endothelial cell culture revealed good biocompatibility of the scaffolds, and cells were able to grow on the inner surface of the tubular scaffolds, indicating promising prospects for use as tissue-engineered vascular grafts.
机译:摘要血管支架血管移植的成功与否在很大程度上取决于支架的结构和力学性能。模拟天然血管特性的小直径血管支架(SDVSs)的制造一直是一个挑战。在此,我们提出了一种简便的方法,通过使用改进的旋转收集器通过静电纺丝制备热塑性聚氨酯(TPU)/聚己内酯(PCL)杂化SDVSs。通过改变TPU和PCL之间的比例,以及改变静电纺丝体积,可以获得具有波形结构和不同性能的SDVSs。详细研究表明,某些TPU/PCL混合SDVSs与血管的力学行为非常相似,这是因为存在波浪状区域,以及柔性TPU和刚性PCL的组合,模拟了血管中弹性蛋白和胶原的特性。制造的TPU/PCL SDVSs的内腔直径为1–3mm,壁厚为100–570μm,周向模量为1–6MPa,极限强度为2–8MPa,断裂伸长率超过250%,趾部区域为5.3–9.4%,可恢复性高,顺应性接近人体静脉。此外,这些TPU/PCL SDVSs具有足够的缝合保留强度和破裂压力,以满足移植要求并维持正常血流。人内皮细胞培养显示支架具有良好的生物相容性,细胞能够在管状支架的内表面生长,显示出作为组织工程血管移植物的良好前景。

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