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首页> 外文期刊>Biomedizinische Technik >Preparation, characterization and blood compatibility assessment of a novel electrospun nanocomposite comprising polyurethane and ayurvedic-indhulekha oil for tissue engineering applications
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Preparation, characterization and blood compatibility assessment of a novel electrospun nanocomposite comprising polyurethane and ayurvedic-indhulekha oil for tissue engineering applications

机译:新型聚氨酯组织和阿育吠陀-indhulekha油的静电纺丝纳米复合材料的制备,表征和血液相容性评估,用于组织工程

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摘要

Electrospun polyurethane based nanocomposite scaffolds were fabricated by mixing with indhulekha oil. Scanning electron microscope (SEM) portrayed the nanofibrous nature of the composite and the average diameters of the composite scaffold were smaller than the pristine scaffolds. The fabricated scaffold was found to be hydrophobic (114 degrees) due to the inclusion of indhulekha oil, which was displayed in contact angle measurement analysis. The fourier transform infrared spectroscopy (FTIR) results indicated that the indhulekha oil was dispersed in PU matrix identified by formation of hydrogen bond and peak shifting of CH group. The PU/indhulekha oil nanocomposite exhibits a higher decomposition onset temperature and also residual weight percentage at 900 degrees C was more compared to the pure PU. Surface roughness was found to be increased in the composite compared to the pristine PU as indicated by the atomic force microscopy (AFM) analysis. In order to investigate the blood compatibility of electrospun nanocomposites the activated partial thromboplastin time (APTT) assay, prothrombin time (PT) assay and hemolytic assay were performed. The blood compatibility results APTT and PT revealed that the developed nanocomposites demonstrated delayed clotting time indicating the anticoagulant nature of the composite in comparison with the pristine PU. Further, it was also observed that the hemolytic index of nanocomposites was reduced compared to pure PU suggesting the non-hemolytic nature of the fabricated scaffold. Hence, the fabricated nanocomposites might be considered as a potent substitute for scaffolding damaged tissue due to their inherent physicochemical and blood compatibility properties.
机译:通过与indhulekha油混合制备静电纺基于聚氨酯的纳米复合支架。扫描电子显微镜(SEM)描绘了复合材料的纳米纤维性质,复合材料支架的平均直径小于原始支架。由于包含indhulekha油,发现制成的支架具有疏水性(114度),这在接触角测量分析中显示出来。傅立叶变换红外光谱(FTIR)结果表明,通过氢键的形成和CH基团的峰位移,将靛蓝油分散在PU基质中。 PU / indhulekha油纳米复合材料表现出更高的分解起始温度,并且与纯PU相比,在900摄氏度下的残留重量百分比更高。如原子力显微镜(AFM)分析所示,发现与原始PU相比,复合材料的表面粗糙度有所增加。为了研究电纺纳米复合材料的血液相容性,进行了活化的部分凝血活酶时间(APTT)测定,凝血酶原时间(PT)测定和溶血测定。血液相容性结果APTT和PT显示,开发的纳米复合材料显示出延迟的凝结时间,表明该复合材料与原始PU相比具有抗凝性。此外,还观察到,与纯PU相比,纳米复合材料的溶血指数降低,表明所制备支架的非溶血性质。因此,由于其固有的物理化学和血液相容性,所制造的纳米复合材料可被认为是脚手架损坏组织的有效替代品。

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