首页> 外文期刊>Journal of Polymer Research >Physico-mechanical and in vitro characterization of electrically conductive electrospun nanofibers of poly urethane/single walled carbon nano tube by great endothelial cells adhesion for vascular tissue engineering
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Physico-mechanical and in vitro characterization of electrically conductive electrospun nanofibers of poly urethane/single walled carbon nano tube by great endothelial cells adhesion for vascular tissue engineering

机译:聚氨基甲酸酯/单壁碳纳米管的电导电电纺纳米纤维对血管组织工程的高内皮细胞粘附

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摘要

Cardiovascular diseases (CVD) because of blood vessel disease are considered as one of the most frequent causes for mortality in all over the world. Recently, blood vessel tissue engineering is identified as one the promising strategies in order to overcome CVD. Accordingly, using Nano technology provides many benefits in blood vessel tissue engineering. In Present research Unique electrical, mechanical and biochemical properties of SWNT combined with electrospun polyurethane nanofiber was investigated as a functional composite scaffold for vascular tissue engineering. SWNT and polyurethane nanofibers incorporation indicated a biomechanical behavior similar to native artery. The scaffold morphological properties have been investigated by the use of scanning electron microscopy. With respect to the results, nanofiber diameter distribution was narrowed down by increasing SWNT content, while mean nanofiber diameter increased from 40 nm up to 140 nm. Physico-chemical characterization using FTIR, DSC, XRD and Raman test, demonstrated the nanoparticle appropriate dispersion and interaction to the polyurethane macromolecule. Along with increasing SWNT content up to the 2% (W/W) ultimate stress and young modulus increased 3 and 11 time, compared to pure PU, respectively. Structures electrical conductivity was increased from 0.0013 s/cm to 0.36 s/cm along with the increasing of SWNT content up to 2%. SWNT unique properties modulated samples hydrophilicity, and also contact angle of nanofiber scaffolds decreased from 100(0) to 77(0). By passing 7 days, in vitro cell culture demonstrated dense layer of endothelial cells, which is crucial for blood vessel tissue engineering. Obtained results confirmed that electrospun poly urethane-SWNT scaffold could be considered as an appropriate candidate for blood vessel tissue engineering.
机译:由于血管疾病的心血管疾病(CVD)被认为是世界各地死亡率最常见的原因之一。最近,血管组织工程被确定为有希望的策略,以克服CVD。因此,使用纳米技术在血管组织工程中提供了许多益处。目前研究SWNT的独特电气,机械和生化特性与电纺聚氨酯纳米纤维相结合,作为血管组织工程的功能性复合支架。 SWNT和聚氨酯纳米纤维掺入表明了类似于天然动脉的生物力学行为。已经通过使用扫描电子显微镜研究了支架形态学性质。关于结果,通过增加SWNT含量,纳米纤维直径分布缩小,而平均纳米纤维直径从40nm增加到140nm。使用FTIR,DSC,XRD和拉曼测试的物理化学表征,证明了纳米粒子适当的分散和相互作用与聚氨酯大分子。与纯PU相比,随着SWNT含量增加到2%(w / w)的最终应力和幼年模量增加3和11次。结构电导率从0.0013 s / cm至0.36 s / cm增加,随着SWNT含量的增加高达2%。 SWNT独特的性质调制样本亲水性,并且纳米纤维支架的接触角从100(0)至77(0)降低。通过7天,体外细胞培养物证明了内皮细胞的致密层,这对于血管组织工程至关重要。得到的结果证实,Extract纺的聚氨酯-WNT支架可以被认为是血管组织工程的适当候选者。

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