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首页> 外文期刊>Biomacromolecules >Engineering Interaction between Bone Marrow Derived Endothelial Cells and Electrospun Surfaces for Artificial Vascular Graft Applications
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Engineering Interaction between Bone Marrow Derived Endothelial Cells and Electrospun Surfaces for Artificial Vascular Graft Applications

机译:人工血管移植应用中骨髓衍生内皮细胞和电纺表面之间的工程相互作用

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The aim of this investigation was to understand and engineer the interactions between endothelial cells and the electrospun (ES) polyvinylidene fluoride-co-hexafluoropropy- lene (PVDF-HFP) nanofiber surfaces and evaluate their potential for endothelialization. Elastomeric PVDF-HFP samples were electrospun to evaluate their potential use as small diameter artificial vascular graft scaffold (SDAVG) and compared' with solvent cast (SC) PVDF-HFP films. We examined the consequences of fibrinogen adsorption onto the ES and SC samples for endothelialisation. Bone marrow derived endothelial cells (BMEC) of human origin were incubated, with the test and control samples and their attachment, proliferation, and viability were examined. The nature of interaction of fibrinogen with SC.and ES samples was investigated in detail using ELISA, XPS, and FTIR techniques. The pristine SC and ES PVDF-HFP samples displayed hydrophobic and ultrahydrophobic behavior and accordingly, exhibited minimal BMEC growth. Fibrinogen adsorbed SC samples did not significantly enhance endothelial cell binding or proliferation. In contrast, the fibrinogen adsorbed electrospun surfaces showed a clear ability to modulate endothelial cell behavior. This system also represents an ideal model system that enables us to understand the natural interaction between cells and their extracellular environment. The research reported shows potential of ES surfaces for artificial vascular graft applications.
机译:这项研究的目的是了解和工程化内皮细胞与静电纺(ES)聚偏二氟乙烯-六氟丙烯共聚物(PVDF-HFP)纳米纤维表面之间的相互作用,并评估其内皮化的潜力。将弹性体PVDF-HFP样品进行静电纺丝,以评估其作为小直径人工血管移植支架(SDAVG)的潜在用途,并与溶剂浇铸(SC)PVDF-HFP膜进行比较。我们检查了纤维蛋白原吸附到ES和SC样品上进行内皮化的后果。将人来源的骨髓源性内皮细胞(BMEC)与受试样品和对照样品进行孵育,并检查其附着,增殖和生存能力。使用ELISA,XPS和FTIR技术详细研究了纤维蛋白原与SC和ES样品相互作用的性质。原始的SC和ES PVDF-HFP样品表现出疏水和超疏水行为,因此,其BMEC的生长最小。纤维蛋白原吸附的SC样品未显着增强内皮细胞结合或增殖。相反,纤维蛋白原吸附的电纺丝表面具有明显的调节内皮细胞行为的能力。该系统还代表了理想的模型系统,使我们能够了解细胞及其细胞外环境之间的自然相互作用。研究报告表明,ES表面在人工血管移植应用中具有潜力。

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