骨形态发生蛋白2
巨噬细胞极化
细胞生物学
材料科学
体内
化学
巨噬细胞
分泌物
细胞因子
体外
免疫学
医学
生物
生物化学
生物技术
作者
Hongzhou Shen,Jun Shi,Yin Zhi,Xiaoyan Yang,Yuan Yuan,Jiawen Si,Steve Guofang Shen
标识
DOI:10.1016/j.msec.2020.111471
摘要
This study aimed to explore the in vitro and in vivo roles of macrophages in the osteogenesis stimulated by BMP2-CPC. In vitro, the alteration of macrophage polarization and cytokine secretion induced by BMP2-CPC or CPC was investigated. The influence of conditioned medium derived from BMP2-CPC- or CPC-stimulated macrophages on the migration and osteogenic differentiation of MSCs were evaluated. The in vivo relationship between macrophage polarization and osteogenesis was examined in a rabbit calvarial defect model. The in vitro results indicated that BMP2-CPC and CPC induced different patterns of macrophage polarization and subsequently resulted in distinct patterns of cytokine expression and secretion. Conditioned medium derived from BMP2-CPC- or CPC-stimulated macrophages both exhibited apparent osteogenic effect on MSCs. Notably, BMP2-CPC induced more M2-phenotype polarization and higher expression of anti-inflammatory cytokines and growth factors than did CPC, which led to the better osteogenic effect of conditioned medium derived from BMP2-CPC-stimulated macrophages. The rabbit calvarial defect model further confirmed that BMP2-CPC facilitated more bone regeneration than CPC did by enhancing M2-phenotype polarization in local macrophages and then alleviating inflammatory reaction. In conclusion, this study revealed that the favorable immunoregulatory property of BMP2-CPC contributed to the strong osteogenic capability of BMP2-CPC by modulating macrophage polarization. Macrophages participate in the osteogenesis stimulated by BMP2-CPC. • Macrophages participate in the osteogenesis stimulated by BMP2-CPC • The immunoregulatory performance of BMP2-CPC contributes to its osteoinductivity • Close association between immune response and BMP2-CPC-stimulated bone regeneration • Providing a new direction for future improvements of CPC-based biomaterials
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