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研究波旁油和硝酸钴构成的电纺纳米支架的血液相容性和体外成骨属性。

Investigation of attributes of bourbon oil and cobalt nitrate constituted electrospun nanoscaffolds for blood compatibility and in vitro bone formation.

机构信息

University of Hull, Department of Engineering, Faculty of Science and Engineering, HU6 7RX, Hull, U.K.

Universiti Teknologi Malaysia, School of Electrical Engineering, Faculty of Engineering, 81310, Johor Bahru, Malaysia.

出版信息

An Acad Bras Cienc. 2021 Oct 22;93(4):e20201140. doi: 10.1590/0001-3765202120201140. eCollection 2021.

Abstract

This work aims to fabricate scaffold using polyurethane (PU) integrated with bourbon oil (BB) and cobalt nitrate (CoNO3) using the electrospinning technique. Morphological investigation signified a fall in fibre diameter for the PU/BB and PU/BB/CoNO3 nanocomposite than the PU. Spectral analysis indicated that BB and CoNO3 were added within the PU matrix. Wettability analysis insinuated an increase in the hydrophobic nature of the PU/BB than the PU. PU/BB/CoNO3 turned to be hydrophilic due to the integration of CoNO3 in the polymer matrix. Mechanical testing of PU/BB and PU/BB/CoNO3 indicated an increase in the tensile strength of the fabricated composites. Atomic force microscopy (AFM) portrayed the reduction in the roughness of the PU/BB and PU/BB/CoNO3 compared to the PU. The coagulation studies invariably documented the improved anticoagulant behaviour and less toxic nature of the PU/BB and PU/BB/CoNO3 in comparison with the PU. Further, bone mineralization testing revealed the enhanced apatite formation of the nanocomposite. Nanocomposite scaffolds with the fore-mentioned properties hold good potential for bone tissue engineering.

摘要

本工作旨在使用电纺技术制造含有 bourbon 油(BB)和硝酸钴(CoNO3)的聚氨酯(PU)支架。形态学研究表明,PU/BB 和 PU/BB/CoNO3 纳米复合材料的纤维直径比 PU 下降。光谱分析表明 BB 和 CoNO3 已添加到 PU 基质中。润湿性分析表明,PU/BB 的疏水性比 PU 增加。由于 CoNO3 已整合到聚合物基质中,PU/BB/CoNO3 变成亲水的。PU/BB 和 PU/BB/CoNO3 的力学测试表明,所制备的复合材料的拉伸强度增加。原子力显微镜(AFM)显示,与 PU 相比,PU/BB 和 PU/BB/CoNO3 的粗糙度降低。凝固研究一致记录了与 PU 相比,PU/BB 和 PU/BB/CoNO3 的抗凝行为改善和毒性降低。此外,矿化测试显示纳米复合材料具有增强的磷灰石形成。具有上述性能的纳米复合材料支架在骨组织工程中具有良好的应用前景。

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