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Mapping Photothermally Induced Gene Expression in Living Cells and Tissues by Nanorod-Locked Nucleic Acid Complexes

机译:纳米杆锁核酸复合物定位在活细胞和组织中的光热诱导基因表达。

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摘要

The photothermal effect of plasmonic nanostructures has numerous applications, such as cancer therapy, photonic gene circuit, large cargo delivery, and nanostructure-enhanced laser tweezers. The photothermal operation can also induce unwanted physical and biochemical effects, which potentially alter the cell behaviors. However, there is a lack of techniques for characterizing the dynamic cell responses near the site of photothermal operation with high spatiotemporal resolution. In this work, we show that the incorporation of locked nucleic acid probes with gold nanorods allows photothermal manipulation and real-time monitoring of gene expression near the area of irradiation in living cells and animal tissues. The multimodal gold nanorod serves as an endocytic delivery reagent to transport the probes into the cells, a fluorescence quencher and a binding competitor to detect intracellular mRNA, and a plasmonic photothermal transducer to induce cell ablation. We demonstrate the ability of the gold nanorod-locked nucleic acid complex for detecting the spatiotemporal gene expression in viable cells and tissues and inducing photothermal ablation of single cells. Using the gold nanorod-locked nucleic acid complex, we systematically characterize the dynamic cellular heat shock responses near the site of photothermal operation. The gold nanorod-locked nucleic acid complex enables mapping of intracellular gene expressions and analyzes the photothermal effects of nanostructures toward various biomedical applications.
机译:等离子体纳米结构的光热效应具有许多应用,例如癌症治疗,光子基因回路,大量货物输送以及纳米结构增强的激光镊子。光热操作还会诱导有害的物理和生化作用,从而潜在地改变细胞行为。但是,缺乏以高时空分辨率表征光热操作位点附近的动态细胞反应的技术。在这项工作中,我们证明了将锁定的核酸探针与金纳米棒结合在一起可以在活细胞和动物组织中的辐照区域附近进行光热操纵和实时监测基因表达。多峰金纳米棒用作内吞递送试剂,将探针转运到细胞中;荧光猝灭剂和结合竞争剂,用于检测细胞内mRNA;等离子体激元光热传感器,用于诱导细胞消融。我们证明了金纳米棒锁核酸复合物检测活细胞和组织中的时空基因表达并诱导单细胞光热消融的能力。使用金纳米棒锁核酸复合物,我们系统地表征了光热操作部位附近的动态细胞热休克反应。金纳米棒锁核酸复合物能够绘制细胞内基因表达,并分析纳米结构对各种生物医学应用的光热效应。

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