矿化(土壤科学)
生物矿化
小泡
化学
成骨细胞
微球
黑磷
基质(化学分析)
骨愈合
再生(生物学)
模拟体液
生物物理学
生物医学工程
体外
化学工程
材料科学
细胞生物学
生物化学
磷灰石
解剖
色谱法
矿物学
生物
膜
工程类
光电子学
有机化学
医学
氮气
作者
Xuanyu Liu,Xuhong He,Mengjin Chen,Yuhui Wang,Chaiqiong Guo,Hao Zhang,Jun Wang,Yanchao Hao,Yan Wei,Ziwei Liang,Liqin Zhao,Danhong Yan,Di Huang
标识
DOI:10.1016/j.ijbiomac.2024.131059
摘要
Bone matrix vesicles are commonly acknowledged as the primary site of biomineralization in human skeletal tissue. Black phosphorus has exhibited favorable properties across various chemical and physical domains. In this investigation, a novel composite microsphere was synthesized through the amalgamation of sodium alginate (ALG) with black phosphorus nanosheets (BP) utilizing the electrospray (ES) technique. These microspheres were tailored to mimic the regulatory function of matrix vesicles (MV) upon exposure to a biomimetic mineralization fluid (SBF) during the biomineralization process. Results revealed that black phosphorus nanosheets facilitated the generation of hydroxyapatite (HA) on the microsphere surface. Live-dead assays and cell proliferation experiments showcased a cell survival rate exceeding 85 %. Moreover, wound healing assessments unveiled that M-ALG-BP microspheres exhibited superior migration capacity, with a migration rate surpassing 50 %. Furthermore, after 7 days of osteogenic induction, M-ALG-BP microspheres notably stimulated osteoblast differentiation. Particularly noteworthy, M-ALG-BP microspheres significantly enhanced osteogenic differentiation of osteoblasts and induced collagen production in vitro. Additionally, experiments involving microsphere implantation into mouse skeletal muscle demonstrated the potential for ectopic mineralization by ALG-BP microspheres. This investigation underscores the outstanding mineralization properties of ALG-BP microspheres and their promising clinical prospects in bone tissue engineering.
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