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Dual-Color Fluorescence Imaging of Magnetic Nanoparticles in Live Cancer Cells Using Conjugated Polymer Probes

机译:使用共轭聚合物探针对活癌细胞中磁性纳米粒子进行双色荧光成像

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摘要

Rapid growth in biological applications of nanomaterials brings about pressing needs for exploring nanomaterial-cell interactions. Cationic blue-emissive and anionic green-emissive conjugated polymers are applied as dual-color fluorescence probes to the surface of negatively charged magnetic nanoparticles through sequentially electrostatic adsorption. These conjugated polymers have large extinction coefficients and high fluorescence quantum yield (82% for PFN and 62% for ThPFS). Thereby, one can visualize trace amount (2.7 μg/mL) of fluorescence-labeled nanoparticles within cancer cells by confocal laser scanning microscopy. Fluorescence labeling by the conjugated polymers is also validated for quantitative determination of the internalized nanoparticles in each individual cell by flow cytometry analysis. Extensive overlap of blue and green fluorescence signals in the cytoplasm indicates that both conjugated polymer probes tightly bind to the surface of the nanoparticles during cellular internalization. The highly charged and fluorescence-labeled nanoparticles non-specifically bind to the cell membranes, followed by cellular uptake through endocytosis. The nanoparticles form aggregates inside endosomes, which yields a punctuated staining pattern. Cellular internalization of the nanoparticles is dependent on the dosage and time. Uptake efficiency can be enhanced three-fold by application of an external magnetic field. The nanoparticles are low cytotoxicity and suitable for simultaneously noninvasive fluorescence and magnetic resonance imaging application.
机译:纳米材料的生物应用的快速增长带来了探索纳米材料与细胞相互作用的迫切需求。通过顺序静电吸附,将阳离子蓝色发射和阴离子绿色发射共轭聚合物作为双色荧光探针应用于带负电荷的磁性纳米粒子的表面。这些共轭聚合物具有大的消光系数和高的荧光量子产率(PFN为82%,ThPFS为62%)。因此,可以通过共聚焦激光扫描显微镜观察癌细胞内痕量(2.7μg/ mL)的荧光标记的纳米颗粒。还验证了通过共轭聚合物进行的荧光标记,可用于通过流式细胞术分析定量确定每个单个细胞中的内在纳米颗粒。细胞质中蓝色和绿色荧光信号的广泛重叠表明,两种共轭的聚合物探针在细胞内化过程中均紧密结合至纳米颗粒的表面。高电荷和荧光标记的纳米颗粒非特异性地结合到细胞膜,然后通过内吞作用被细胞摄取。纳米颗粒在内体内部形成聚集体,产生斑点状的染色模式。纳米颗粒的细胞内在化取决于剂量和时间。通过施加外部磁场,吸收效率可以提高三倍。纳米粒子具有低细胞毒性,适合同时用于无创荧光和磁共振成像应用。

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