Preparation and Osteogenic Properties of β-TCP+HA+GO Composites

Xu-Mei Cheng, Rui Ma, Yan-Bing Zhou, Tao Li, Sheng-Nan Lei, Xin Zheng, Hui-Xiao Zhang, Mei-Tian Liu, Jianye Zhou, Zhi-Qiang Li
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Abstract

Bone defect repair is a hot topic in tissue engineering, and the development of economical and effective bone scaffold materials to achieve the goal of repairing bone defects is an important task for researchers. In this experiment, fresh bovine cancellous bone was used as a xenogeneic bone material. After two high-temperature calcinations, β-tricalcium phosphate (β-TCP) material was obtained. An in-situ co-precipitation method was employed to prepare hydroxyapatite+graphene oxide (HA+GO) composite material. Then, the β-TCP material was immersed in the HA+GO composite material solution to prepare β-TCP+HA+GO composite material. The surface modification of β-TCP material with HA and GO improved the elastic modulus of the raw material. In vitro cell showed that the composite material was non-toxic, biocompatible, and promoted the proliferation of MC3T3-E1 cells on the β-TCP+HA+GO material. Finally, it was found that β-TCP+HA+GO composite material effectively stimulated the actin and mineralization behavior of MC3T3-E1 cells, and promoted the expression of bone-related factors such as Alkaline phosphatase (ALP), Collagen I (COLI), Osteocalcin (OCN), Bone Morphogenetic Protein-2 (BMP-2), and Bone Morphogenetic Protein-7 (BMP-7) in MC3T3-E1 cells In conclusion, β-TCP+HA+GO composite material can be applied in the biomedical field as a bone substitute or repair material.
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β-TCP+HA+GO复合材料的制备与成骨特性
骨缺损修复是组织工程学的热门话题,开发经济有效的骨支架材料以实现修复骨缺损的目标是研究人员的一项重要任务。本实验采用新鲜牛松质骨作为异种骨材料。经过两次高温煅烧后,得到了β-磷酸三钙(β-TCP)材料。采用原位共沉淀法制备了羟基磷灰石+氧化石墨烯(HA+GO)复合材料。然后将β-TCP材料浸入HA+GO复合材料溶液中制备β-TCP+HA+GO复合材料。用HA和GO对β-TCP材料进行表面改性,提高了原材料的弹性模量。体外细胞实验表明,该复合材料无毒、生物相容性好,并能促进 MC3T3-E1 细胞在β-TCP+HA+GO 材料上的增殖。最后研究发现,β-TCP+HA+GO 复合材料能有效刺激 MC3T3-E1 细胞的肌动蛋白和矿化行为,并促进骨骼相关因子的表达,如碱性磷酸酶(ALP)、胶原蛋白 I(COLI)、骨钙素(OCN)、骨密度蛋白(OCN)、骨密度蛋白(OCN)、骨密度蛋白(OCN)、骨密度蛋白(OCN)和骨密度蛋白(OCN)、总之,β-TCP+HA+GO 复合材料可作为骨替代品或修复材料应用于生物医学领域。
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