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3D nanocomposite chitosan/bioactive glass scaffolds obtained using two different routes: an evaluation of the porous structure and mechanical properties

机译:使用两种不同途径获得的3D纳米复合壳聚糖/生物活性玻璃支架:多孔结构和机械性能的评估

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Porous synthetic substrates are developed through tissue engineering technologies to grow new tissue, restoring the function of tissue or an organ. For bone regeneration, these scaffolds must support the dynamic load exerted on this tissue, achieved primarily by increasing their compression strength, as established in the literature. The aim of this paper was to incorporate an inorganic composite bioactive glass (60%SiO 2 - 36%CaO - 4%P 2 O 5 ) as a reinforcing agent in mechanical 3D scaffolds that must remain porous. Two strategies were adopted: a co-precipitation method to obtain a nanoparticulate dispersion of bioactive glass (BGNP) and a sol-gel method to combine a bioactive glass solution (BG) with a previously prepared chitosan polymer solution. Moreover, a lyophilization process was also used, generating highly porous scaffolds. Various aspects of the scaffold were evaluated, including the morphology, orientation and size of the pores, and mechanical strength, as obtained using the two synthetic methods. The data for compressive strength revealed increased strength after the incorporation of bioactive glass, which was more pronounced when utilizing the nanoscale bioactive glass.
机译:多孔合成基质是通过组织工程技术开发的,可以生长新组织,恢复组织或器官的功能。对于骨再生,这些支架必须支持施加在该组织上的动态负载,这主要是通过增加其抗压强度来实现的,如文献所述。本文的目的是在必须保持多孔的机械3D支架中加入无机复合生物活性玻璃(60%SiO 2-36%CaO-4%P 2 O 5)作为增强剂。采用了两种策略:共沉淀法以获得生物活性玻璃的纳米颗粒分散液(BGNP)和溶胶-凝胶法,将生物活性玻璃溶液(BG)与先前制备的壳聚糖聚合物溶液混合。此外,还使用了冻干过程,产生了高度多孔的支架。评估了支架的各个方面,包括使用两种合成方法获得的孔的形态,孔的方向和大小以及机械强度。抗压强度的数据显示了掺入生物活性玻璃后强度增加,这在利用纳米级生物活性玻璃时更加明显。

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