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Bioactive, degradable and multi-functional three-dimensional membranous scaffolds of bioglass and alginate composites for tissue regenerative applications

机译:生物加工的生物活性,可降解和多功能的三维膜支架和用于组织再生应用的藻酸盐复合材料

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摘要

With a worldwide increase in the aged populace and associated geriatric diseases, there is an enormous need for the regeneration of degenerated organ systems. For this purpose, bioactive glass particulate (nBG) integrated alginate (Alg) composite membrane scaffolds were fabricated by a sol-gel assisted freeze-drying method and validated for their multifunctional utility in regenerative medicine. The presence of the combeite highly crystalline structure of nBG and Alg amorphous broad peaks were confirmed. Repetitive peaks from acids along with stretching confirmed the chemical interactions of the composites. Swelling ability, porosity, andin vitrodegradation and biomineralization were analysed for up to 7 days. The results indicated that reduced swelling and degradation enhanced apatite formation. Hemocompatibility and the hemostatic properties on scaffolds were also systematically investigated. Additionally, significant cyto-compatibility and proliferation were noted in a culture with KB3-1. Further 3-D co-cultures with HDF cells and KB3-1 cells exhibited spheroid formation on Alg, nBG/Alg and nBG-Zr/Alg with profound dynamism required to establish organoids of interest. Thus, the results indicate that these 3D hydrogel membranes could offer infinite possibilities in the field of regenerative medicine, notably as an extracellular matrix (ECM) supporting the regeneration of bone, intra-vascularization, and neo-tissue formation, such as cartilage and ligaments.
机译:随着年龄较大的群体和相关的老年疾病的全球增加,对退化器官系统的再生有巨大需求。为此目的,通过溶胶 - 凝胶辅助冷冻干燥方法制造生物活性玻璃颗粒(NBG)集成藻酸盐(ALG)复合膜支架,并验证了它们在再生医学中的多功能效用。确认了NBG和ALG非晶宽峰的组合高度晶体结构的存在。从酸和拉伸的重复峰证实了复合材料的化学相互作用。分析膨胀能力,孔隙率,玻璃体玻璃化和生物碳化盐长达7天。结果表明,降低溶胀和降解增强磷灰石形成。还系统地研究了支架上的血液相色和止血性能。另外,在具有Kb3-1的培养物中注意到显着的细胞相容性和增殖。具有HDF细胞和KB3-1细胞的3-D共培养物在ALG,NBG / ALG和NBG-ZR / ALG上表现出球状形成,具有建立有机体的深刻活性。因此,结果表明,这些3D水凝胶膜可以在再生医学领域提供无限可能性,特别是支持骨骼,血管内化和新组织形成再生的细胞外基质(ECM),例如软骨和韧带。

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