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首页> 外文期刊>Carbohydrate Polymers: Scientific and Technological Aspects of Industrially Important Polysaccharides >Fabrication of novel bioactive hydroxyapatite-chitosan-silica hybrid scaffolds: Combined the sol-gel method with 3D plotting technique
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Fabrication of novel bioactive hydroxyapatite-chitosan-silica hybrid scaffolds: Combined the sol-gel method with 3D plotting technique

机译:新型生物活性羟基磷灰石 - 壳聚糖 - 二氧化硅杂交支架的制备:将溶胶 - 凝胶法与3D绘图技术合并

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摘要

Sol-gel derived organic/inorganic hybrids, in which organic and inorganic components form co-networks at the molecular level, have demonstrated great potential for providing improved mechanical properties and biological functions in tissue engineering applications. Here, a novel bioactive hydroxyapatite-chitosan-silica hybrid (HA-CSH) scaffold was successfully fabricated by combining the sol-gel method and 3D plotting technique. Physiochemical characterization confirmed that chitosan was hybridized homogeneously with the inorganic phase on nanoscale. The obtained scaffolds possessed precisely controllable and interconnected porous structures. The nano-sized HA formed in situ and dispersed uniformly in the hybrid network, which reduced the water absorption and increased the mechanical strength of the hybrid scaffold under humidity condition as compared to chitosan-silica hybrid (CSH) scaffold. Compression tests showed that the 3D plotted hybrid scaffolds under wet conditions had compressive strengths of 10-13 MPa and elastic moduli of 21-27 MPa and thus met the mechanical requirements of human trabecular bone. Studies on the mineralization process under simulated body fluid (SBF) conditions confirmed that the introduction of HA obviously increased the biological activity of hybrid scaffolds. In vitro cell results indicated that the HA-CSH scaffold not only supported adhesion and proliferation of mouse bone mesenchymal stem cells (mBMSCs), but also improved the osteoinductivity. The alkaline phosphatase activity and mineral deposition on the HA-CSH scaffold were higher than those on the CSH scaffold. These results suggested that the 3D plotted HA-CSH scaffold may be a promising bioactive material for bone tissues regeneration.
机译:溶胶 - 凝胶衍生的有机/无机杂交物,其中有机和无机组分在分子水平上形成了共同网络,已经表明了在组织工程应用中提供了改进的机械性能和生物功能的巨大潜力。这里,通过组合溶胶 - 凝胶法和3D绘制技术成功地制造了一种新的生物活性羟基磷灰石 - 壳聚糖 - 二氧化硅杂交(HA-CSH)支架。生理化学表征证实,壳聚糖与纳米级的无机相均匀地杂交。所获得的支架具有精确可控和相互连接的多孔结构。与壳聚糖 - 二氧化硅杂交(CSH)支架相比,纳米尺寸的HA原位形成并均匀地分散在混合网中,从而降低了湿度条件下的杂交支架的机械强度。压缩试验表明,湿条件下的3D绘制的杂交支架具有10-13MPa和21-27MPa的弹性模量的抗压强度,因此达到了人的小梁骨的机械要求。模拟体液(SBF)条件下的矿化过程的研究证实,哈哈的引入明显增加了杂交支架的生物活性。体外细胞结果表明,HA-CSH支架不仅支持小鼠骨间充质干细胞(MBMSCs)的粘附和增殖,而且还改善了骨诱导性。 HA-CSH支架上的碱性磷酸酶活性和矿物沉积高于CSH支架上的矿物沉积。这些结果表明,3D绘制的HA-CSH支架可以是骨组织再生的有希望的生物活性材料。

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