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Nanocomposite scaffolds with tunable mechanical and degradation capabilities: co-delivery of bioactive agents for bone tissue engineering

机译:具有可调节的机械和降解能力的纳米复合支架:共同交付用于骨组织工程的生物活性剂

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Novel multifunctional nanocomposite scaffolds made of nanobioactive glass and alginate crosslinked with therapeutic ions such as calcium and copper were developed for delivering therapeutic agents, in a highly controlled and sustainable manner, for bone tissue engineering. Alendronate, a well-known antiresorptive agent, was formulated into microspheres under optimized conditions and effectively loaded within the novel multifunctional scaffolds with a high encapsulation percentage. The size of the cation used for the alginate crosslinking impacted directly on porosity and viscoelastic properties, and thus, on the degradation rate and the release profile of copper, calcium and alendronate. According to this, even though highly porous structures were created with suitable pore sizes for cell ingrowth and vascularization in both cases, copper-crosslinked scaffolds showed higher values of porosity, elastic modulus, degradation rate and the amount of copper and alendronate released, when compared with calcium-crosslinked scaffolds. In addition, in all cases, the scaffolds showed bioactivity and mechanical properties close to the endogenous trabecular bone tissue in terms of viscoelasticity. Furthermore, the scaffolds showed osteogenic and angiogenic properties on bone and endothelial cells, respectively, and the extracts of the biomaterials used promoted the formation of blood vessels in an ex vivo model. These new bioactive nanocomposite scaffolds represent an exciting new class of therapeutic cell delivery carrier with tunable mechanical and degradation properties; potentially useful in the controlled and sustainable delivery of therapeutic agents with active roles in bone formation and angiogenesis, as well as in the support of cell proliferation and osteogenesis for bone tissue engineering.
机译:开发了由纳米生物活性玻璃和藻酸盐与治疗性离子(例如钙和铜)交联的新型多功能纳米复合材料支架,用于以高度受控和可持续的方式输送治疗剂,用于骨组织工程。阿仑膦酸酯,一种众所周知的抗吸收剂,在优化的条件下配制成微球,并有效地以高包封率负载在新型多功能支架中。用于藻酸盐交联的阳离子的大小直接影响孔隙率和粘弹性,进而影响铜,钙和阿仑膦酸盐的降解速率和释放曲线。据此,尽管在两种情况下都产生了具有适合细胞向内生长和血管形成的合适孔径的高度多孔结构,但与之相比,铜交联的支架却显示出更高的孔隙率,弹性模量,降解率以及铜和阿仑膦酸盐的释放量。与钙交联的支架。另外,在所有情况下,就粘弹性而言,支架显示出与内生小梁骨组织接近的生物活性和机械性能。此外,该支架分别在骨和内皮细胞上显示成骨和血管生成特性,所用生物材料的提取物在离体模型中促进了血管的形成。这些新型生物活性纳米复合材料支架代表了令人兴奋的一类新型治疗细胞传递载体,具有可调节的机械和降解特性。在控制和可持续地输送在骨形成和血管生成中发挥积极作用的治疗剂以及在支持骨组织工程的细胞增殖和成骨中的潜在作用。

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