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Surface plasmon enhanced energy transfer between gold nanorods and fluorophores: application to endocytosis study and RNA detection

机译:表面等离子体增强金纳米棒和荧光团之间的能量转移:在胞吞研究和RNA检测中的应用

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Previously we have demonstrated surface plasmon enhanced energy transfer between fluorophores and gold nanorods under two-photon excitation using fluorescence lifetime imaging microscopy (FLIM) in both solution and intracellular phases. These studies demonstrated that gold nanoparticle-dye energy transfer combinations are appealing, not only in Forster resonance energy transfer (FRET) imaging, but also energy transfer-based fluorescence lifetime sensing of bio-analytes. Here, we apply this approach to study the internalization of gold nanorods (GNRs) in HeLa cells using the early endosome labeling marker GFP. The observed energy transfer between GFP and the GNRs indicates the involvement of endocytosis in GNR uptake. Moreover, a novel nanoprobe based on oligonucleotide functionalized gold nanorods for nucleic acid sensing via dye-GNRs energy transfer is demonstrated, potentially opening up new possibilities in cancer diagnosis and prognosis. The influence of oligonucleotide design on such nanoprobe performance was studied for the first time using time-resolved fluorescence spectroscopy, bringing new insights to the optimization of the nanoprobe.
机译:以前,我们已经在溶液和细胞内相中使用荧光寿命成像显微镜(FLIM)在双光子激发下证明了表面等离子体激元增强了荧光团和金纳米棒之间的能量转移。这些研究表明,金纳米粒子-染料的能量转移组合不仅在Forster共振能量转移(FRET)成像中,而且在生物分析物的基于能量转移的荧光寿命传感方面都具有吸引力。在这里,我们应用这种方法来研究使用早期内体标记标记GFP的HeLa细胞中金纳米棒(GNR)的内在化。在GFP和GNR之间观察到的能量转移表明胞吞作用参与了GNR摄取。此外,展示了一种基于寡核苷酸功能化的金纳米棒的新型纳米探针,用于通过染料-GNR能量转移进行核酸感测,潜在地为癌症诊断和预后开辟了新的可能性。首次使用时间分辨荧光光谱法研究了寡核苷酸设计对此类纳米探针性能的影响,为纳米探针的优化带来了新见解。

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