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Development of a compliant and cytocompatible micro-fibrous polyethylene terephthalate vascular scaffold

机译:顺应性和细胞相容性的微纤维聚对苯二甲酸乙二醇酯血管支架的开发

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摘要

Bioengineering approaches have been intensively applied to create small diameter vascular grafts using artificial materials. However, a fully successful, high performing and anti-thrombogenic structure has not been achieved yet. In this study, we have designed and fabricated a novel non-woven fibrous vascular graft with biomechanical properties closely resembling those of native vessels. Vascular cell growth, preservation of cell phenotype, retention of vasoactive properties, as well as the effect of gelatin coating on the cellular interaction with the scaffolds under static and shear stress conditions were investigated. The non-woven fibrous scaffolds were made from melt blown polyethylene terephthalate fiber webs stacked by means of a consolidation technique. The scaffold variables were fiber diameter distribution and the number of consolidated web stacks. SEM analysis confirmed various fiber diameter and pore size ranges corresponding to the different conditions. The scaffolds showed burst pressure values of ~1500 mmHg and compliance (8.4 6 \ub1 1.0 \ud7 10\u207b\ub2% mmHg\u207b\ub9) very similar to those of native arteries (~8 \ud7 10\u207b\ub2% mmHg\u207b\ub9). The structure with the smallest fiber diameter range (1\u20135 \ub5m) and pore size range (1\u201320 \ub5m) was the most suitable for the growth of human brain endothelial cells and aortic smooth muscle cells. The cells maintained their specific cell phenotype, expressed collagen and elastin and produced cAMP in response to \u3b1-calcitonin gene-related peptide. However, under shear stress conditions (0.9 dyne cm\u207b\ub2), only 30% of the cells were retained in both uncoated and gelatincoated scaffolds indicating the need for improving the cell retention capacity of these structures, which is our future research direction. This study indicates that the biomechanical and biocompatible properties of this novel vascular scaffold are promising for the development of a vascular graft with similar characteristics to those of native vessels.
机译:生物工程方法已被广泛应用,以使用人造材料制造小直径的血管移植物。然而,尚未获得完全成功的,高性能的和抗血栓形成的结构。在这项研究中,我们设计和制造了一种新型的非织造纤维血管移植物,其生物力学特性与天然血管非常相似。研究了在静态和剪切应力条件下,血管细胞的生长,细胞表型的保留,血管活性的保留以及明胶涂层对与支架的细胞相互作用的影响。非织造纤维支架由通过固结技术堆叠的熔喷聚对苯二甲酸乙二醇酯纤维网制成。支架变量是纤维直径分布和固结纤维网堆叠的数量。 SEM分析证实了对应于不同条件的各种纤维直径和孔径范围。支架的爆破压力值约为1500 mmHg,顺应性(8.4 6 \ ub1 1.0 \ ud7 10 \ u207b \ ub2%mmHg \ u207b \ ub9)与天然动脉的血压非常相似(〜8 \ ud7 10 \ u207b \ ub2% mmHg \ u207b \ ub9)。具有最小纤维直径范围(1 \ u20135 \ ub5m)和孔径范围(1 \ u201320 \ ub5m)的结构最适合人脑内皮细胞和主动脉平滑肌细胞的生长。这些细胞保持其特定的细胞表型,表达胶原蛋白和弹性蛋白,并响应\ u3b1-降钙素基因相关肽而产生cAMP。然而,在剪切应力条件下(0.9达因cm2),未涂覆和明胶涂覆的支架中仅保留30%的细胞,这表明需要提高这些结构的细胞保留能力,这是我们未来的研究方向。这项研究表明,这种新型血管支架的生物力学和生物相容性特性有望用于开发具有与天然血管相似特性的血管移植物。

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