Nowak Nicole, Wiglusz Rafal Jakub
Institute of Low Temperature and Structure Research, Polish Academy of Sciences, Okolna 2, 50-422 Wroclaw, Poland.
Nanomaterials (Basel). 2021 Dec 28;12(1):77. doi: 10.3390/nano12010077.
In this study, nanosized vanadate-substituted hydroxyapatites doped with 1 mol% and 2 mol% Eu ions were obtained via the precipitation method. To evaluate the structure and morphology of the obtained compounds, the XRPD (X-ray powder diffraction) technique, Rietveld refinement, SEM-EDS (scanning electron microscopy-energy-dispersive spectrometry) and TEM (transmission electron microscopy) techniques as well as FTIR (Fourier transform infrared) spectroscopy were performed. Moreover, the chemical formula was confirmed using the ICP-OES (Inductively coupled plasma optical emission spectroscopy spectroscopy). The calculated average grain size for powders was in the range of 25 to 90 nm. The luminescence properties of vanadium-substituted hydroxyapatite were evaluated by recording emission spectra and excitation spectra as well as luminescence kinetics. The crucial step of this research was the evaluation of the biocompatibility of the synthesized nanomaterials. Therefore, the obtained compounds were tested toward sheep red blood cells and normal human dermal fibroblast to confirm the nontoxicity and biocompatibility of new nanosized Eu ion-doped vanadate-hydroxyapatite. Moreover, the final step of the research allowed us to determine the time dependent ion release to the simulated body fluid environment. The study confirmed cytocompatibility of vanadium hydroxyapatite doped with Eu ions.
在本研究中,通过沉淀法获得了掺杂1 mol%和2 mol%铕离子的纳米钒酸盐取代羟基磷灰石。为了评估所得化合物的结构和形态,采用了XRPD(X射线粉末衍射)技术、Rietveld精修、SEM-EDS(扫描电子显微镜-能量色散光谱)和TEM(透射电子显微镜)技术以及FTIR(傅里叶变换红外)光谱。此外,使用ICP-OES(电感耦合等离子体发射光谱)确定了化学式。计算得出的粉末平均粒径在25至90纳米范围内。通过记录发射光谱、激发光谱以及发光动力学来评估钒取代羟基磷灰石的发光性能。本研究的关键步骤是评估合成纳米材料的生物相容性。因此,将所得化合物用于测试绵羊红细胞和正常人皮肤成纤维细胞,以确认新型纳米铕离子掺杂钒酸盐-羟基磷灰石的无毒性和生物相容性。此外,研究的最后一步使我们能够确定在模拟体液环境中离子随时间的释放情况。该研究证实了铕离子掺杂钒羟基磷灰石的细胞相容性。