A'/> Silk fibroin/<ce:italic>kappa</ce:italic>-carrageenan composite scaffolds with enhanced biomimetic mineralization for bone regeneration applications
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Silk fibroin/kappa-carrageenan composite scaffolds with enhanced biomimetic mineralization for bone regeneration applications

机译:丝素蛋白/ kappa 扶手蛋白复合支架,具有增强的骨再生应用仿生矿化

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Abstract The combination of protein-polysaccharide in scaffolding together with the ability to induce bone-like apatite formation has become a promising approach to mimic extracellular matrix composition. In the present study, we developed and characterized new bioactive composite scaffolds from kappa-carrageenan/silk fibroin for bone regeneration applications. Three dimensional (3D) scaffolds were fabricated by adding various amounts of carrageenan to a silk fibroin solution, followed by freeze-drying. Various characterization techniques were applied to analyze such items as the structure, morphology, compressive strength, and bone-like apatite mineralization of the composites, which were then compared to those of pure fibroin scaffolds. The results demonstrated the formation of a highly porous structure with interconnected pores. The mean pore size and porosity both increased by increasing carrageenan content. Moreover, the addition of carrageenan to silk fibroin led to the formation of a bone-like apatite layer throughout the scaffolds after 7days of soaking them in simulated body fluid. Osteoblast-like cell (MG 63) culture experiments indicated that all scaffolds are biocompatible. The cells attached well to the surfaces of all scaffolds and tended to join their adjacent cells. However, higher carrageenan content led to better cellular proliferation and higher Alkaline phosphatase expression.
机译:<![cdata [ 抽象 蛋白质 - 多糖在脚手架中的组合以及诱导骨状磷灰石形成的能力已成为一个有前途的模拟细胞外基质组合物的方法。在本研究中,我们开发了来自 kappa -carrageenan /丝素蛋白的新的生物活性复合支架,用于骨再生应用。通过将各种量的角叉菜胶剂加入丝素蛋白溶液,然后冷冻干燥来制造三维(3D)支架。应用各种表征技术以分析这些物品作为结构,形态,抗压强度和复合材料的骨状磷灰石矿化,然后与纯纤维素支架的结构相比。结果表明,形成具有相互连接的孔隙的高度多孔结构。通过增加角叉菜胶含量增加平均孔径和孔隙率。此外,在7 CE:HSP SP =“0.25”/>在模拟体液中浸泡后,将角叉菜蛋白加入丝状纤维素导致在整个支架中形成骨状磷灰石层。甲状腺细胞样细胞(Mg 63)培养实验表明所有支架都是生物相容性的。电池附着在所有支架的表面上,并倾向于加入其相邻的细胞。然而,更高的鹿茸含量导致更好的细胞增殖和更高的碱性磷酸酶表达。

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