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Polymeric nanocomposites loaded with fluoridated hydroxyapatite Ln^(3+)(Ln = Eu or Tb)/iron oxide for magnetic targeted cellular imaging

Polymeric nanocomposites loaded with fluoridated hydroxyapatite Ln^(3+)(Ln = Eu or Tb)/iron oxide for magnetic targeted cellular imaging
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摘要 Objective: To fabricate polymeric nanocomposites with excellent photoluminescence, magnetic properties, and stability in aqueous solutions, in order to improve specificity and sensitivity of cellular imaging under a magnetic field. Methods: Fluoridated Ln3+-doped HAP(Ln3+-HAP) NPs and iron oxides(IOs) can be encapsulated with biocompatible polymers via a modified solvent exaction/evaporation technique to prepare polymeric nanocomposites with fluoridated Ln3+-HAP/iron oxide. The nanocomposites were characterized for surface morphology, fluorescence spectra, magnetic properties and in vitro cytotoxicity. Magnetic targeted cellular imaging of such nanocomposites was also evaluated with confocal laser scanning microscope using A549 cells with or without magnetic field.Results: The fabricated nanocomposites showed good stability and excellent luminescent properties, as well as low in vitro cytotoxicity, indicating that the nanocomposites are suitable for biological applications. Nanocomposites under magnetic field achieved much higher cellular uptake via an energy-dependent pathway than those without magnetic field.Conclusion: The nanocomposites fabricated in this study will be a promising tool for magnetic targeted cellular imaging with improved specificity and enhanced selection. Objective: To fabricate polymeric nanocomposites with excellent photoluminescence, magnetic properties, and stability in aqueous solutions, in order to improve specificity and sensitivity of cellular imaging under a magnetic field. Methods: Fluoridated LnS+-doped HAP (Ln3+-HAP) NPs and iron oxides (lOs) can be encapsulated with biocompatible polymers via a modified solvent exaction/evaporation technique to prepare polymeric nanocomposites with fluoridated Ln3+-HAP/iron oxide. The nanocomposites were characterized for surface morphology, fluorescence spectra, magnetic properties and in vitro cytotoxicity. Magnetic targeted cellular imaging of such nanocomposites was also evaluated with confocal laser scanning microscope using A549 cells with or without magnetic field. Results: The fabricated nanocomposites showed good stability and excellent luminescent properties, as well as low in vitro cytotoxicity, indicating that the nanocomposites are suitable for biological applications. Nanocomposites under magnetic field achieved much higher cellular uptake via an energy-dependent pathway than those without magnetic field. Conclusion: 1tie nanocomposites fabricated in this study will be a promising tool for magnetic targeted cellular imaging with improved specificity and enhanced selection.
出处 《Cancer Biology & Medicine》 SCIE CAS CSCD 2015年第3期175-183,共9页 癌症生物学与医学(英文版)
基金 supported by National Natural Science Foundation of China (Grant No. 21506161, 31270019) National Key Basic Research Program of China (973 Program) (Grant No. 2011CB933100, 2011CB932402) Guangdong Natural Science Funds for Distinguished Young Scholar (Grant No. 2014A030306036) open funds from the Key Laboratory of Biomedical Materials in Tianjin
关键词 聚合物纳米复合材料 含氟羟基磷灰石 细胞成像 稀土离子 磁靶向 氧化铁 激光扫描共聚焦显微镜 体外细胞毒性 Cancer cellular imaging nanocomposites magnetic targeted hydroxyapatite (HAP) doped with rare earth
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