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Fabrication of hierarchically porous silk fibroin-bioactive glass composite scaffold via indirect 3D printing: Effect of particle size on physico-mechanical properties and in vitro cellular behavior

机译:通过间接3D印刷制备分层多孔丝纤维素 - 生物活性玻璃复合支架:粒度对物理机械性能和体外细胞行为的影响

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摘要

In order to regenerate bone defects, bioactive hierarchically scaffolds play a key role due to their multilevel porous structure, high surface area, enhanced nutrient transport and diffusion. In this study, novel hierarchically porous silk fibroin (SF) and silk fibroin-bioactive glass (SF-BG) composite were fabricated with controlled architecture and interconnected structure, by combining indirect three-dimensional (3D) inkjet printing and freeze-drying methods. Further, the effect of 45S5 Bioactive glass particles of different sizes ( 100 nm and 6 mu m) on mechanical strength and cell behavior was investigated. The results demonstrated that the hierarchical structure in this scaffold was composed of two levels of pores in the order of 500-600 mu m and 10-50 mu m. The prepared SF-BG composite scaffolds utilized by nano and micro particles possessed mechanical properties with a compressive strength of 0.94 and 1.2 MPa, respectively, in dry conditions. In a wet condition, the hierarchically porous scaffolds did not exhibit any fluctuation after compression load cell and were incredibly flexible, with excellent mechanical stability. The SF-BG composite scaffold with nanoparticles presented a significant 50% increase in attachment of human bone marrow stem cells in comparison with SF and SF-BG scaffold with microparticles. Moreover, SF-BG scaffolds promoted alkaline phosphatase activity as compared to SF scaffolds without BG particles on day 14. In brief, the 3D porous silk fibroin-based composites containing BG nanoparticles with excellent mechanical properties are promising scaffolds for bone tissue regeneration in high load-bearing applications.
机译:为了再生骨缺损,生物活跃的分层脚手架由于其多级多孔结构,高表面积,增强的营养传输和扩散而起到关键作用。在本研究中,通过组合间接三维(3D)喷墨印刷和冷冻干燥方法,用受控架构和互连结构制造了一种新型分层多孔丝纤维素(SF)和丝素蛋白 - 生物活性玻璃(SF-BG)复合材料。此外,研究了不同尺寸(<100nm和6μm)对机械强度和细胞行为的45s5生物活性玻璃颗粒的影响。结果表明,该支架中的等级结构由500-600μm和10-50μm的尺寸由两种水平的孔组成。由纳米和微颗粒使用的制备的SF-BG复合支架具有在干燥条件下分别具有0.94和1.2MPa的压缩强度的机械性能。在潮湿的条件下,阶级多孔支架在压缩负载电池后没有表现出任何波动,并且具有令人难以置信的柔性,具有优异的机械稳定性。与纳米颗粒的SF-BG复合支架具有纳米颗粒的显着增加50%,与微粒的SF和SF-BG支架相比,人骨髓干细胞的附着的增加50%。此外,与没有Bg颗粒的SF支架,SF-BG支架促进碱性磷酸酶活性在第14天没有BG颗粒。简而言之,含有具有优异机械性能的Bg纳米颗粒的3D多孔丝素蛋白基复合材料是高负荷的骨组织再生支架 - 抱着应用程序。

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