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In vitro cell proliferation evaluation of porous nano-zirconia scaffolds with different porosity for bone tissue engineering

机译:不同孔隙度的多孔纳米氧化锆支架在骨组织工程中的体外细胞增殖评价

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摘要

The selection of scaffold materials and the optimization of scaffold morphological and mechanical properties are critical for successful bone tissue engineering. We fabricated porous scaffolds of nano-sized zirconia using a replication technique. The study aimed to explore the relationship between porosity, pore size, mechanical strength, cell adhesion, and cell proliferation in the zirconia scaffolds. Macro-and micro-structures and compressive strength were comparatively tested. Beagle bone marrow stromal cells were seeded onto the scaffolds to evaluate cell seeding efficiency and cell proliferation profile over 14 d of incubation. The zirconia scaffolds presented a complex porous structure with good interconnectivity of pores. By increasing the sinter cycles, the porosity and pore size of the scaffolds decreased, with mean values ranging from 92.7-68.0% and 830-577 mu m, respectively, accompanied by increased compressive strengths of 0.6-4.4 MPa. Cell seeding efficiency and cell proliferation over the first 7 d of incubation increased when the porosity decreased, with cell viability highest in the scaffold with a porosity of 75.2%. After 7 d of incubation, the cell proliferation increased when the porosity increased, highest in the scaffolds with a porosity of 92.7%. These results showed that the zirconia scaffold with a porosity of 75.2% possesses favorable mechanical and biological properties for future applications in bone tissue engineering.
机译:支架材料的选择以及支架形态和机械性能的优化对于成功进行骨组织工程至关重要。我们使用复制技术制造了纳米级氧化锆的多孔支架。该研究旨在探讨氧化锆支架中孔隙率,孔径,机械强度,细胞粘附和细胞增殖之间的关系。对宏观和微观结构以及抗压强度进行了比较测试。将比格犬骨髓基质细胞接种到支架上,以评估培养14天后的细胞接种效率和细胞增殖情况。氧化锆支架呈现出复杂的多孔结构,具有良好的孔互连性。通过增加烧结周期,支架的孔隙率和孔径减小,平均值分别为92.7-68.0%和830-577μm,同时抗压强度提高了0.6-4.4 MPa。当孔隙率降低时,孵育的前7天细胞接种效率和细胞增殖会增加,支架中的细胞活力最高,孔隙率为75.2%。温育7天后,当孔隙率增加时,细胞增殖增加,在支架中最高,孔隙率为92.7%。这些结果表明,孔隙率为75.2%的氧化锆支架具有良好的机械和生物学特性,可用于将来在骨组织工程中的应用。

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