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首页> 外文期刊>Materials science & engineering, C. Materials for Biogical applications >Polyurethane foam/nano hydroxyapatite composite as a suitable scaffold for bone tissue regeneration
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Polyurethane foam/nano hydroxyapatite composite as a suitable scaffold for bone tissue regeneration

机译:聚氨酯泡沫/纳米羟基磷灰石复合材料作为合适的骨组织再生支架

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摘要

AbstractIn bone tissue regeneration, the use of biomineralized scaffolds to create the 3D porous structure needed for well-fitting with defect size and appropriate cell interactions, is a promising alternative to autologous and heterologous bone grafts. Biomineralized polyurethane (PU) foams are here investigated as scaffold for bone tissue regeneration. Biomineralization of the foams was carried out by activation of PU surface by a two steps procedure performed for different times (1 to 4 weeks). Scaffolds were investigated for morphological, chemico-physical and mechanical properties, as well as for in vitro interaction with rat Bone Marrow Mesenchymal Stem Cells (BMSCs). Untreated and biomineralized PU samples showed a homogenous morphology and regular pore size (average ?=407μm). Phase and structure of formed calcium phosphates (CaPs) layer onto the PU foam were analyzed by Fourier Transform Infrared spectroscopy and X-ray diffraction, proving the formation of bone-like nano hydroxyapatite. Biomineralization caused a significant increase of mechanical properties of treated foams compared to untreated ones. Biomineralization also affected the PU scaffold cytocompatibility providing a more appropriate surface for cell attachment and proliferation. Considering the obtained results, the proposed scaffold can be considered suitable for bone tissue regeneration.Highlights
机译:<![cdata [ 抽象 在骨组织再生中,使用生物矿化的支架,以良好的缺陷制作良好的拟合所需的3D多孔结构。尺寸和适当的细胞相互作用,是对自体和异源骨移植物的有希望的替代品。这里,生物蛋白化聚氨酯(PU)泡沫作为骨组织再生的支架被研究。通过对不同时间(1至4周)进行的两步方法激活Pu表面进行泡沫的生物丙原。研究了支架进行形态学,化学物理和机械性能,以及与大鼠骨髓间充质干细胞(BMSC)的体外相互作用。未经处理的和生物蛋白化PU样品显示出均匀的形态和常规孔径(平均?=407μm)。通过傅里叶变换红外光谱和X射线衍射分析所形成的磷酸钙(帽)层(帽)层上的磷酸钙(帽)层,证明了骨状纳米羟基磷灰石的形成。与未处理的生物蛋白导致处理过的泡沫的机械性能显着增加。生物丙碳化还影响PU支架细胞织组合,为细胞附着和增殖提供更合适的表面。考虑到所得结果,所提出的支架可以考虑适用于骨组织再生。 突出显示

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