On the potential for fibronectin/phosphorylcholine coatings on PTFE substrates to jointly modulate endothelial cell adhesion and hemocompatibility properties.

Vanessa Montaño-Machado, Pascale Chevallier, Diego Mantovani, Emmanuel Pauthe
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引用次数: 31

Abstract

The use of biomolecules as coatings on biomaterials is recognized to constitute a promising approach to modulate the biological response of the host. In this work, we propose a coating composed by 2 biomolecules susceptible to provide complementary properties for cardiovascular applications: fibronectin (FN) to enhance endothelialization, and phosphorylcholine (PRC) for its non thrombogenic properties. Polytetrafluoroethylene (PTFE) was selected as model substrate mainly because it is largely used in cardiovascular applications. Two approaches were investigated: 1) a sequential adsorption of the 2 biomolecules and 2) an adsorption of the protein followed by the grafting of phosphorylcholine via chemical activation. All coatings were characterized by immunofluorescence staining, X-Ray Photoelectron Spectroscopy and Scanning Electron Microscopy analyses. Assays with endothelial cells showed improvement on cell adhesion, spreading and metabolic activity on FN-PRC coatings compared with the uncoated PTFE. Platelets adhesion and activation were both reduced on the coated surfaces when compared with uncoated PTFE. Moreover, clotting time tests exhibited better hemocompatibility properties of the surfaces after a sequential adsorption of FN and PRC. In conclusion, FN-PRC coating improves cell adhesion and non-thrombogenic properties, thus revealing a certain potential for the development of this combined deposition strategy in cardiovascular applications.

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聚四氟乙烯基纤维连接蛋白/磷胆碱涂层联合调节内皮细胞粘附和血液相容性的潜力。
利用生物分子作为生物材料的涂层被认为是一种有前途的方法来调节宿主的生物反应。在这项工作中,我们提出了一种由两种生物分子组成的涂层,它们易于为心血管应用提供互补特性:纤维连接蛋白(FN)增强内皮化,磷酰胆碱(PRC)具有非血栓形成特性。选择聚四氟乙烯(PTFE)作为模型基材主要是因为它在心血管领域有广泛的应用。研究了两种方法:1)2个生物分子的顺序吸附和2)蛋白质的吸附,然后通过化学活化接枝磷胆碱。采用免疫荧光染色、x射线光电子能谱和扫描电镜对涂层进行表征。内皮细胞实验显示,与未涂覆PTFE相比,涂覆FN-PRC的细胞粘附、扩散和代谢活性均有改善。与未涂覆的PTFE相比,涂覆表面的血小板粘附和活化都降低了。此外,凝血时间测试显示,连续吸附FN和PRC后,表面具有更好的血液相容性。综上所述,FN-PRC涂层改善了细胞粘附性和非血栓形成性,从而揭示了这种联合沉积策略在心血管应用中的发展潜力。
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