首页> 外文期刊>Journal of Materials Chemistry, B. materials for biology and medicine >Good hydration and cell-biological performances of superparamagnetic calcium phosphate cement with concentration-dependent osteogenesis and angiogenesis induced by ferric iron
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Good hydration and cell-biological performances of superparamagnetic calcium phosphate cement with concentration-dependent osteogenesis and angiogenesis induced by ferric iron

机译:超顺磁性磷酸钙骨水泥具有良好的水化和细胞生物学性能,并具有三价铁诱导的浓度依赖性成骨和血管生成

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摘要

The multifunctionality of calcium phosphate cement (CPC) can be achieved via co-doping with different metallic ions. Magnetism and hyperthermia have been proposed as potential therapeutic methods in bone healing and anti-osteosarcoma treatment. Iron-doping in biomaterials has been confirmed to meet the clinical requirements for these treatments. Herein, superparamagnetic iron-doped CPC (Fe-CPC) showed improved injectability and compressive strength, increased negative surface charge and accelerated hydration with increasing Fe3+ concentration. The superparamagnetism of Fe-CPC was confirmed through vibrating sample magnetometer (VSM) analysis. Mouse bone marrow stromal cells (mBMSCs) cultured on Fe-CPC disks exhibited better attachment morphology and proliferation, and had an enhancement of osteogenic-related gene expression. Moreover, a series of extracts with different concentrations of Fe3+ in cell culture medium were leaching-prepared to simulate the Fe3+-containing liquid environment around the magnetic biomaterials. The performances of mBMSCs and human umbilical vein endothelial cells (HUVECs) cultured in Fe3+-extracts showed increased proliferation rate in a certain amount of Fe3+. Osteogenesis and angiogenesis induced by Fe3+ were observed, but cytotoxicity in mBMSCs appeared when the concentration of Fe3+ was beyond a critical value. Fe-CPC is supposed to have prospective applications in bone remodeling through the combination of self-setting in situ, injectability, superparamagnetism, osteogenesis, angiogenesis, and osteoconductivity.
机译:磷酸钙水泥(CPC)的多功能性可以通过与不同金属离子共掺杂来实现。磁性和热疗已被提出作为骨愈合和抗骨肉瘤治疗中的潜在治疗方法。已经证实,生物材料中的铁掺杂可以满足这些治疗方法的临床要求。在本文中,随着Fe3 +浓度的增加,超顺磁性铁掺杂CPC(Fe-CPC)表现出改善的可注射性和抗压强度,增加的负表面电荷和加速水合作用。 Fe-CPC的超顺磁性通过振动样品磁力计(VSM)分析得到确认。在Fe-CPC盘上培养的小鼠骨髓基质细胞(mBMSC)表现出更好的附着形态和增殖,并增强了成骨相关基因的表达。此外,浸出制备了一系列不同浓度的细胞培养基中Fe3 +的提取物,以模拟磁性生物材料周围的含Fe3 +的液体环境。在Fe3 +提取物中培养的mBMSCs和人脐静脉内皮细胞(HUVECs)的性能显示一定量的Fe3 +增殖速率增加。观察到Fe3 +引起的成骨和血管生成,但是当Fe3 +的浓度超过临界值时,mBMSCs就会出现细胞毒性。 Fe-CPC通过将原位自固定,可注射性,超顺磁性,成骨作用,血管生成和骨传导性结合起来,有望在骨重塑中具有前瞻性应用。

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