Synthesis and Characterization of Copper Ions Doped Octacalcium Phosphate Powders with Enhanced Osteogenic Property

Jiwen Chen, C. Chen, Yun-Ching Wu, Riwang Li, You-Jie Liu, Yiwan Shi, Huige Hou, Junting Liu, Hua-Jun Wang, Tingting Wu, Xiaofei Zheng
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引用次数: 1

Abstract

Diverse biomaterials have been designed to promote bone regeneration, and due to their potential side effects of adverse inflammation and immune responses, only a few synthetic biomaterials displayed successful clinical outcomes in repairing bone defects. The repair of bone defects remains a big challenge for orthopedists. This study was dedicated to the synthesis of copper-doped octacalcium phosphate powder Cu-OCP with good bone repair potential, which provides a new way for the construction of bone regeneration biomaterials. Five kinds of copper-doped powders, OCP, 0.1Cu-OCP, 0.5Cu-OCP, Cu-OCP and 5Cu-OCP, were synthesized by chemical homogeneous precipitation method. The phases of the powders were analyzed by X-ray diffraction (XRD). The elemental compositions of the powders were analyzed by X-ray fluorescence spectrometer (XRF). The microstructures of the powders were observed by scanning electron microscopy (SEM). Inductively coupled plasma atomic emission spectrometry (ICP) was used to determine the 24-hour cumulative release of copper ions in Tris solution. The biocompatibility of the powders was measured by CCK8 and live/dead staining. The effect of the powders on bone differentiation was measured by ALP activity. the OCP powder was a long strip chip like crystal structure under SEM. The doping of Cu2+ made the chip structure smaller and finer. The main diffraction peak of OCP can be seen at 2θ=4.7° for all the five powders. XRF showed that the main composition of the powders was still Ca, P and O. The mass fractions of Cu2+ in the powders were 0.1Cu-OCP: 0.02%, 0.5Cu-OCP: 0.08%, Cu-OCP: 0.23%, and 5Cu-OCP: 0.76%, respectively. ICP results showed that Ca, P and Cu were released slowly in 24 hours in Tris solution. CCK8 and live/dead staining showed that all kinds of copper-doped OCP powders had good biocompatibility with mBMSCs, and could promote osteogenic differentiation. Among them, 0.5Cu-OCP promoted the proliferation and ALP activity of mBMSCs significantly. In conclusion, in this study, copper ions were successfully doped into OCP powder, and the physical and chemical properties of OCP powders doped with copper ions were characterized. In vitro cell experiment confirmed that the powders had good biocompatibility, non-toxic to mBMSCs, and could promote the proliferation of mBMSCs in vitro.
增强成骨性能的铜离子掺杂磷酸八钙粉体的合成与表征
多种生物材料已被设计用于促进骨再生,但由于其潜在的不良炎症和免疫反应的副作用,只有少数合成生物材料在修复骨缺损方面显示出成功的临床结果。骨缺损的修复仍然是骨科医生面临的一大挑战。本研究致力于合成具有良好骨修复潜力的掺铜磷酸八钙粉Cu-OCP,为骨再生生物材料的构建提供了新的途径。采用化学均相沉淀法合成了OCP、0.1Cu-OCP、0.5Cu-OCP、Cu-OCP和5Cu-OCP五种掺铜粉末。用x射线衍射(XRD)分析了粉末的物相。用x射线荧光光谱仪(XRF)分析了粉末的元素组成。用扫描电镜观察了粉末的微观结构。采用电感耦合等离子体原子发射光谱法(ICP)测定了铜离子在Tris溶液中的24小时累积释放量。采用CCK8和活/死染色法测定粉末的生物相容性。用ALP活性测定粉末对骨分化的影响。扫描电镜下OCP粉末呈长条形片状晶体结构。Cu2+的掺杂使芯片结构更小、更细。5种粉末的OCP衍射峰均在2θ=4.7°处。XRF分析表明,粉末中Cu2+的质量分数分别为0.1Cu-OCP: 0.02%、0.5Cu-OCP: 0.08%、Cu-OCP: 0.23%和5Cu-OCP: 0.76%。ICP结果表明,在Tris溶液中,Ca、P和Cu在24小时内释放缓慢。CCK8和活/死染色表明,各种掺杂铜的OCP粉末与mBMSCs具有良好的生物相容性,并能促进成骨分化。其中,0.5Cu-OCP显著促进mBMSCs的增殖和ALP活性。综上所述,本研究成功地将铜离子掺杂到OCP粉末中,并对掺杂铜离子的OCP粉末的物理化学性质进行了表征。体外细胞实验证实该粉末具有良好的生物相容性,对骨髓间充质干细胞无毒,并能促进骨髓间充质干细胞的体外增殖。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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