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The Preparation and Performance of a New Polyurethane Vascular Prosthesis

机译:新型聚氨酯人工血管的制备与性能

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We investigated the performance of small-caliber polyurethane (PU) small-diameter vascular prosthesis generated using the electrospinning technique. PU was electrospun into small-diameter, small-caliber tubular scaffolds for potential application as vascular grafts. We investigated the effects of electrospinning conditions (solution concentration, mandrel rotation speed) on the microstructure and porosity of the scaffolds for the purpose of preparing scaffolds with optimum microstructures and properties. We evaluated the mechanical properties of the scaffolds by tensile tests and the cytotoxicity of the PU small-diameter, small-caliber PU synthetic vascular graft by the MTT assay. The adhesion of endothelial cells to the PU scaffold was characterized by Hoechst staining and fluorescence microscopy, and we measured endothelial cell proliferation on the PU scaffold by the CCK-8 assay. We analyzed the prosthesis microstructure and endothelial cell morphology using scanning electron microscopy. With increasing PU concentration in the electrospinning solution, the fiber diameter of the vascular graft increased and the porosity decreased. In addition, with increasing electrospinning time, the wall thickness increased and the porosity decreased. We found that regular fiber orientation can be obtained by adjusting the rotation speed of the mandrel. Cell proliferation was not inhibited as the small-caliber PU synthetic vascular grafts showed little cytotoxicity. The endothelial cells had faster adherence to the PU scaffolds than to the PTFE surface during the initial contact. After prolonged cell culture, significantly higher endothelial cell proliferation rate was observed in the PU scaffold groups than the PTFE group. We obtained small-caliber PU vascular grafts with optimal fiber arrangement, excellent mechanical properties, and optimal biocompatibility by optimizing the electrospinning conditions. This study provides in vitro biocompatibility data that is helpful for the clinical application of the PU small-diameter, small-caliber PU vascular grafts.
机译:我们研究了使用电纺丝技术生成的小口径聚氨酯(PU)小直径血管假体的性能。将PU静电纺丝成小直径,小口径的管状支架,以潜在地用作血管移植物。为了制备具有最佳微观结构和性能的支架,我们研究了电纺丝条件(溶液浓度,心轴旋转速度)对支架的微观结构和孔隙率的影响。我们通过拉伸试验评估了支架的机械性能,并通过MTT分析评估了PU小直径,小口径PU合成血管移植物的细胞毒性。内皮细胞对PU支架的粘附通过Hoechst染色和荧光显微镜进行了表征,我们通过CCK-8分析测量了PU支架上的内皮细胞增殖。我们使用扫描电子显微镜分析了假体的微观结构和内皮细胞形态。随着静电纺丝溶液中PU浓度的增加,血管移植物的纤维直径增加,孔隙率降低。另外,随着静电纺丝时间的增加,壁厚增加并且孔隙率降低。我们发现可以通过调节心轴的旋转速度来获得规则的纤维取向。细胞增殖不受抑制,因为小口径PU合成血管移植物几乎没有细胞毒性。在初始接触过程中,内皮细胞对PU支架的粘附比对PTFE表面的粘附更快。延长细胞培养时间后,PU支架组的内皮细胞增殖率明显高于PTFE组。通过优化电纺条件,我们获得了具有最佳纤维排列,优异机械性能和最佳生物相容性的小口径PU血管移植物。这项研究提供了体外生物相容性数据,有助于PU小直径,小口径PU血管移植物的临床应用。

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