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Enriched Mechanical Strength and Bone Mineralisation of Electrospun Biomimetic Scaffold Laden with Ylang Ylang Oil and Zinc Nitrate for Bone Tissue Engineering

机译:依兰依兰油和硝酸锌负载电纺丝仿生支架的机械强度和骨矿化作用用于骨组织工程

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摘要

Scaffolds supplemented with naturally derived materials seem to be a good choice in bone tissue engineering. This study aims to develop polyurethane (PU) nanofibers added with ylang ylang (YY) and zinc nitrate (ZnNO3) using the electrospinning method. Field emission scanning electron microscopy (FESEM) images showed that the diameter of the PU nanofibers (869 ± 122 nm) was reduced with the addition of YY and ZnNO3 (PU/YY—467 ± 132 nm and PU/YY/ZnNO3—290 ± 163 nm). Fourier transform infrared (FTIR), a thermal gravimetric analysis (TGA) and an X-ray diffraction (XRD) analysis confirmed the interactions between PU with YY and ZnNO3. In addition, a thermal gravimetric analysis (TGA) study revealed the improved thermal stability for PU/YY and a slight reduction in the thermal stability for PU/YY/ZnNO3. A tensile test indicated that the addition of YY and ZnNO3 (PU/YY—12.32 MPa and PU/YY/ZnNO3—14.90 MPa) improved the mechanical properties of the pristine PU (6.83 MPa). The electrospun PU/YY (524 nm) and PU/YY/ZnNO3 (284 nm) showed a reduced surface roughness when compared with the pristine PU (776 nm) as depicted in the atomic force microscopy (AFM) analysis. The addition of YY and ZnNO3 improved the anticoagulant and biocompatibility nature of the pristine PU. Furthermore, the bone mineralization study depicted the improved calcium deposition in the fabricated composites (PU/YY—7.919% and PU/YY/ZnNO3—10.150%) compared to the pristine PU (5.323%). Hence, the developed composites with desirable physico-chemical properties, biocompatibility and calcium deposition can serve as plausible candidates for bone tissue engineering.
机译:补充天然衍生材料的脚手架似乎是骨组织工程中的不错选择。这项研究的目的是利用静电纺丝技术开发添加了依兰依兰(YY)和硝酸锌(ZnNO3)的聚氨酯(PU)纳米纤维。场发射扫描电子显微镜(FESEM)图像显示,添加YY和ZnNO3(PU / YY-467±132 nm和PU / YY / ZnNO3-290±)可减小PU纳米纤维的直径(869±122 nm)。 163 nm)。傅立叶变换红外(FTIR),热重分析(TGA)和X射线衍射(XRD)分析证实了PU与YY和ZnNO3之间的相互作用。此外,热重分析(TGA)研究表明,PU / YY的热稳定性有所提高,而PU / YY / ZnNO3的热稳定性略有下降。拉伸试验表明,添加YY和ZnNO3(PU / YY-12.32 MPa和PU / YY / ZnNO3-14.90 MPa)可以改善原始PU的机械性能(6.83 MPa)。如原子力显微镜(AFM)分析所示,与原始PU(776 nm)相比,电纺PU / YY(524 nm)和PU / YY / ZnNO3(284 nm)的表面粗糙度降低。 YY和ZnNO3的添加改善了原始PU的抗凝血和生物相容性。此外,骨骼矿化研究表明,与原始PU(5.323%)相比,人造复合材料(PU / YY-7.919%和PU / YY / ZnNO3--10.150%)中钙沉积的改善。因此,具有理想的理化性质,生物相容性和钙沉积的已开发复合材料可以作为骨组织工程的合理候选物。

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