Rapid Manufacturing Engineering Center, Mechatronic Engineering and Automation of Shanghai University, Shanghai, China.
Shanghai Key Laboratory of Intelligent Manufacturing and Robotics, Shanghai University, Shanghai, China.
J Biomater Sci Polym Ed. 2021 Apr;32(6):714-734. doi: 10.1080/09205063.2020.1864083. Epub 2021 Jan 11.
Currently, one of the best preparation strategies for the triple-layered vascular scaffold is to imitate the three-layer structure of natural blood vessels to achieve the biofunctional characteristics of vascular transplantation. Here, we developed a combinatorial method to fabricate triple-layered vascular scaffold (TVS) by using electrospinning and coaxial 3 D printing. First, Polycaprolactone-collagen (PCL-Col) was applied to prepared the inner layer of TVS by electrospinning. Second, egg white/sodium alginate (EW/SA) blend hydrogel was extruded to form hollow filaments by coaxial 3 D printing and crosslinking mechanism, which enwound around the surface of the inner layer in a circumferential direction as the intermediate layer of TVS. Finally, electrospun PCL-Col nanofibers were wrapped on the surface of hydrogel layer as the outer layer of TVS. The morphological characterization and mechanical strength of the fabricated TVS were measured. Compared with natural blood vessels, results shown that ultimate tensile stress (UTS), strain to failure (STF), the estimated burst strength and the suture retention strength (SRS) of TVS were superior. Also, the fabricated TVS exhibits good hydrophilicity and excellent flexibility. Moreover, the biocompatibility of TVS was investigated through human umbilical vein endothelial cells (HUVECs), the results demonstrated that cells can successfully attach the surface of graft and maintain high viability. In summary, all of results demonstrated that this method could fabricate a novel triple-layered vascular scaffold, possessing appropriate mechanical properties and good biological properties, which has the potential to be used in tissue engineered vascular grafts applications.
目前,制备三层血管支架的最佳策略之一是模仿天然血管的三层结构,以实现血管移植的生物功能特性。在这里,我们开发了一种组合方法,通过静电纺丝和同轴 3D 打印来制造三层血管支架(TVS)。首先,使用聚己内酯-胶原蛋白(PCL-Col)通过静电纺丝制备 TVS 的内层。其次,蛋清/海藻酸钠(EW/SA)共混水凝胶通过同轴 3D 打印和交联机制挤出形成空心纤维,并沿内层表面以圆周方向缠绕作为 TVS 的中间层。最后,将静电纺丝的 PCL-Col 纳米纤维包裹在水凝胶层的表面作为 TVS 的外层。测量了制备的 TVS 的形态特征和机械强度。与天然血管相比,结果表明,TVS 的极限拉伸应力(UTS)、断裂伸长率(STF)、估计的破裂强度和缝合保持强度(SRS)都有所提高。此外,制备的 TVS 具有良好的亲水性和优异的柔韧性。此外,通过人脐静脉内皮细胞(HUVECs)研究了 TVS 的生物相容性,结果表明细胞可以成功附着在移植物表面并保持高活力。总之,所有结果都表明,这种方法可以制造出一种具有适当机械性能和良好生物性能的新型三层血管支架,有望应用于组织工程血管移植物。