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首页> 外文期刊>Journal of biological inorganic chemistry: JBIC: a publication of the Society of Biological Inorganic Chemistry >Development of multifunctional nanoparticles towards applications in non-invasive magnetic resonance imaging and axonal tracing
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Development of multifunctional nanoparticles towards applications in non-invasive magnetic resonance imaging and axonal tracing

机译:多功能纳米粒子朝向非侵入性磁共振成像和轴突追踪的应用

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A multifunctional nanobiomaterial has been developed by deliberately combining functions of superparamagnetism, fluorescence, and axonal tracing into one material. Superparamagnetic iron oxide nanoparticles were first synthesized and coated with a silica layer to prevent emission quenching through core-dye interactions; a fluorescent molecule, fluorescein isothiocyanate, was doped inside second layer of silica shell to improve photo-stability and to enable further thiol functionalization. Subsequently, biotinylated dextran amine, a sensitive axonal tracing reagent, was immobilized on the thiol-functionalized nanoparticle surfaces. The resulting nanoparticles were characterized by transmission electron microscopy, dynamic light scattering, X-ray diffraction, X-ray photoelectron spectroscopy, UV-Vis spectroscopy, magnetic resonance imaging and fluorescence confocal microscopy. In vitro cell experiments using both undifferentiated and differentiated Neuro-2a cells showed that the cells were able to take up the nanoparticles intracellularly and that the nanoparticles showed good biocompatibilities. In summary, this new material demonstrated promising performances for both optical and magnetic resonance imaging modalities, suggesting its promising potentials in applications such as in non-invasive imaging, particularly in neuronal tracing.
机译:已经通过故意将超分量,荧光和轴突追踪的功能刻意地组合成一种材料来开发多官能纳米胺材料。首先合成超顺磁性氧化铁纳米颗粒并用二氧化硅层涂覆以防止通过核 - 染料相互作用的排放猝灭;荧光分子,荧光分子异硫氰酸酯,掺杂在二氧化硅壳内部的第二层内,以改善光稳定性,并能够进一步硫醇官能化。随后,将生物素化的葡聚糖胺,敏感的轴突跟踪试剂固定在硫醇官能化的纳米颗粒表面上。通过透射电子显微镜,动态光散射,X射线衍射,X射线光电子能谱,UV-Vis光谱,磁共振成像和荧光共振显微镜,得到所得的纳米颗粒。使用两个未分化和分化的神经2a细胞的体外细胞实验表明,细胞能够细胞内占据纳米颗粒,并且纳米颗粒显示出良好的生物相容性。总之,这种新材料对光学和磁共振成像方式表明了有希望的性能,这表明其在非侵入性成像中的应用中的有希望的电位,特别是在神经元描绘中。

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