首页> 外文期刊>Journal of biomedical materials research, Part A >Platelet adhesion studies on nanostructured poly(lactic-co-glycolic-acid)-carbon nanotube composite.
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Platelet adhesion studies on nanostructured poly(lactic-co-glycolic-acid)-carbon nanotube composite.

机译:纳米结构聚乳酸-乙醇酸-碳纳米管复合材料的血小板粘附研究。

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摘要

Design of blood-compatible surfaces is required to minimize platelet-surface interactions and increase the thromboresistance of foreign surfaces. Poly(lactic-co-glycolic-acid)-carbon nanotube (PLGA-CNT) composite is studied as a building material to fabricate artificial blood prostheses. This nanocomposite-based biomaterial is prepared by an electrostatic Layer-by-Layer (LbL) deposition technique, in which layers of CNTs are adsorbed onto a PLGA film. Before incubation in nonstimulated platelet-rich plasma (PRP) for platelet studies, fibrinogen is immobilized on PLGA-CNT composite. Interactions between the plasma proteins, e.g. fibrinogen and PRP, are investigated on the prepared PLGA-CNT composite. Contact angle measurements on the PLGA-CNT composite displayed a good resistance of platelets adhesion on a hydrophilic surface with an angle of 64.94 degrees as compared to pristine PLGA control with an angle of 93.43 degrees . A significant reduction of adhesion is observed on the PLGA-CNT composite, as well as the absence of platelet activation. On the contrary, both platelet adhesion and activation are observed on control samples. We inferred this suppression in secretion of granule contents in the platelet by the presence of the CNTs that resulted in the absence of platelet activation and its subsequent inhibition in the release of adhesive membrane receptors on the PLGA-CNT composite.
机译:需要设计血液相容性表面,以最大程度地减少血小板与表面的相互作用并增加异物表面的抗血栓性。研究了聚乳酸-乙醇酸-碳纳米管(PLGA-CNT)复合材料作为制造人造血液假体的建筑材料。该纳米复合材料基生物材料通过静电逐层(LbL)沉积技术制备,其中CNT层被吸附到PLGA膜上。在未刺激的富含血小板的血浆(PRP)中培养血小板之前,将纤维蛋白原固定在PLGA-CNT复合材料上。血浆蛋白之间的相互作用在制备的PLGA-CNT复合材料上研究了纤维蛋白原和PRP。与原始PLGA对照的93.43度角相比,PLGA-CNT复合材料的接触角测量显示出良好的抗亲水表面血小板粘附性能,其夹角为64.94度。在PLGA-CNT复合材料上观察到粘附力显着降低,并且没有血小板活化。相反,在对照样品上观察到血小板粘附和活化。我们推测由于存在碳纳米管而导致血小板中颗粒含量的分泌受到抑制,这导致了血小板的活化,并且随后抑制了PLGA-CNT复合材料上粘附膜受体的释放。

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