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首页> 外文期刊>Journal of biomaterials applications >Preparation of in situ hardening composite microcarriers: Calcium phosphate cement combined with alginate for bone regeneration
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Preparation of in situ hardening composite microcarriers: Calcium phosphate cement combined with alginate for bone regeneration

机译:原位硬化复合微载体的制备:磷酸钙水泥与藻酸盐结合骨再生

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Novel microcarriers consisting of calcium phosphate cement and alginate were prepared for use as three-dimensional scaffolds for the culture and expansion of cells that are effective for bone tissue engineering. The calcium phosphate cement-alginate composite microcarriers were produced by an emulsification of the composite aqueous solutions mixed at varying ratios (calcium phosphate cement powder/alginate solution = 0.8-1.2) in an oil bath and the subsequent in situ hardening of the compositions during spherodization. Moreover, a porous structure could be easily created in the solid microcarriers by soaking the produced microcarriers in water and a subsequent freeze-drying process. Bone mineral-like apatite nanocrystallites were shown to rapidly develop on the calcium phosphate cement-alginate microcarriers under moist conditions due to the conversion of the α-tricalcium phosphate phase in the calcium phosphate cement into a carbonate-hydroxyapatite. Osteoblastic cells cultured on the microspherical scaffolds were proven to be viable, with an active proliferative potential during 14 days of culture, and their osteogenic differentiation was confirmed by the determination of alkaline phosphatase activity. The in situ hardening calcium phosphate cement-alginate microcarriers developed herein may be used as potential three-dimensional scaffolds for cell delivery and tissue engineering of bone.
机译:制备由磷酸钙水泥和藻酸钙组成的新型微载体,用作培养和膨胀对骨组织工程有效的细胞的三维支架。通过以不同比例(磷酸钙水泥粉末/海藻酸盐溶液= 0.8-1.2)在油浴中混合的复合水溶液的乳化产生磷酸钙水泥 - 藻酸钙复合微载体,并在球状化期间含有组合物的原位硬化。此外,通过在水中浸泡生产的微载体和随后的冷冻干燥过程,可以在固体微载体中容易地产生多孔结构。由于将磷酸钙水泥中的α-三磷酸钙相中转化为碳酸氢盐 - 羟基磷灰石,显示骨矿物样磷灰石纳米晶体在潮湿的条件下在潮湿的条件下快速发展。经证明在微球体支架上培养的骨细胞细胞被证明是可行的,在培养14天期间具有活性增殖潜力,并通过测定碱性磷酸酶活性来证实它们的骨质发生分化。本文开发的原位硬化磷酸钙水泥 - 藻酸盐微载体可用作潜在的三维支架,用于骨细胞输送和组织工程。

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