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Three-dimensional printing of hierarchical and tough mesoporous bioactive glass scaffolds with a controllable pore architecture, excellent mechanical strength and mineralization ability

机译:具有可控的孔结构,优异的机械强度和矿化能力的分级且坚韧的介孔生物活性玻璃支架的三维印刷

摘要

New-generation biomaterials for bone regenerations should be highly bioactive, resorbable and mechanically strong. Mesoporous bioactive glass (MBG), as a novel bioactive material, has been used for the study of bone regeneration due to its excellent bioactivity, degradation and drug-delivery ability; however, how to construct a 3D MBG scaffold (including other bioactive inorganic scaffolds) for bone regeneration still maintains a significant challenge due to its/their inherit brittleness and low strength. In this brief communication, we reported a new facile method to prepare hierarchical and multifunctional MBG scaffolds with controllable pore architecture, excellent mechanical strength and mineralization ability for bone regeneration application by a modified 3D-printing technique using polyvinylalcohol (PVA), as a binder. The method provides a new way to solve the commonly existing issues for inorganic scaffold materials, for example, uncontrollable pore architecture, low strength, high brittleness and the requirement for the second sintering at high temperature. The obtained 3D-printing MBG scaffolds possess a high mechanical strength which is about 200 times for that of traditional polyurethane foam template-resulted MBG scaffolds. They have highly controllable pore architecture, excellent apatite-mineralization ability and sustained drug-delivery property. Our study indicates that the 3D-printed MBG scaffolds may be an excellent candidate for bone regeneration.
机译:用于骨骼再生的新一代生物材料应具有高生物活性,可吸收性和机械强度。介孔生物活性玻璃(MBG)作为一种新型生物活性材料,因其优异的生物活性,降解性和药物传递能力而被用于骨再生研究。然而,由于其具有脆性和低强度,如何构建用于骨骼再生的3D MBG支架(包括其他生物活性无机支架)仍然面临着巨大的挑战。在此简短的交流中,我们报告了一种新的简便方法,该方法可通过使用聚乙烯醇(PVA)作为粘合剂的改良3D打印技术来制备具有可控的孔结构,优异的机械强度和矿化能力的多层和多功能MBG支架,以用于骨骼再生。该方法为解决无机支架材料普遍存在的问题提供了新的途径,例如,无法控制的孔结构,低强度,高脆性和高温下二次烧结的要求。所获得的3D打印MBG支架具有很高的机械强度,约为传统聚氨酯泡沫模板制成的MBG支架的200倍。它们具有高度可控的孔结构,出色的磷灰石矿化能力和持续的药物传递特性。我们的研究表明3D打印的MBG支架可能是骨骼再生的极佳候选者。

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