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首页> 外文期刊>Dalton transactions: An international journal of inorganic chemistry >Covalent bridging of surface functionalized Fe3O4 and YPO4:Eu nanostructures for simultaneous imaging and therapy
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Covalent bridging of surface functionalized Fe3O4 and YPO4:Eu nanostructures for simultaneous imaging and therapy

机译:表面功能化的Fe3O4和YPO4:Eu纳米结构的共价桥接,可同时进行成像和治疗

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Magnetic luminescent hybrid nanostructures (MLHN) have received a great deal of attention due to their potential biomedical applications such as thermal therapy, magnetic resonance imaging, drug delivery and intracellular imaging. We report the development of bifunctional Fe3O4 decorated YPO4:Eu hybrid nanostructures by covalent bridging of carboxyl PEGylated Fe3O4 and amine functionalized YPO4:Eu particles. The surface functionalization of individual nanoparticulates as well as their successful conjugation was evident from Fourier transform infrared (FTIR) spectroscopy, dynamic light scattering (DLS), zeta-potential and transmission electron microscopy (TEM) studies. X-ray diffraction (XRD) analysis reveals the formation of highly crystalline hybrid nanostructures. TEM micrographs clearly show the binding/anchoring of 10 nm Fe3O4 nanoparticles onto the surface of 100-150 nm rice grain shaped YPO4:Eu nanostructures. These MLHN show good colloidal stability, magnetic field responsivity and self-heating capacity under an external AC magnetic field. The induction heating studies confirmed localized heating of MLHN under an AC magnetic field with a high specific absorption rate. Photoluminescence spectroscopy and fluorescence microscopy results show optical imaging capability of MLHN. Furthermore, successful internalization of these MLHN in the cells and their cellular imaging ability are confirmed from confocal microscopy imaging. Specifically, the hybrid nanostructure provides an excellent platform to integrate luminescent and magnetic materials into one single entity that can be used as a potential tool for hyperthermia treatment of cancer and cellular imaging.
机译:磁性发光混合纳米结构(MLHN)由于其潜在的生物医学应用(例如热疗法,磁共振成像,药物递送和细胞内成像)而受到了广泛的关注。我们报告了通过羧基聚乙二醇化的Fe3O4和胺官能化的YPO4:Eu粒子的共价桥联双功能Fe3O4装饰的YPO4:Eu杂化纳米结构的发展。傅立叶变换红外(FTIR)光谱,动态光散射(DLS),ζ电位和透射电子显微镜(TEM)研究证明了单个纳米颗粒的表面功能化及其成功的共轭作用。 X射线衍射(XRD)分析揭示了高度结晶的杂化纳米结构的形成。 TEM显微照片清楚地显示了10 nm Fe3O4纳米颗粒在100-150 nm米粒状YPO4:Eu纳米结构表面上的结合/固定。这些MLHN在外部交流磁场下显示出良好的胶体稳定性,磁场响应性和自热容量。感应加热研究证实,MLHN在高吸收率的交流磁场下局部加热。光致发光光谱和荧光显微镜结果显示了MLHN的光学成像能力。此外,共聚焦显微镜成像证实了这些MLHN在细胞中的成功内在化及其细胞成像能力。具体而言,杂化纳米结构提供了一个出色的平台,可以将发光和磁性材料整合到一个单一的实体中,该实体可以用作癌症的高温治疗和细胞成像的潜在工具。

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