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Plasmon-resonant nanorods as multimodal agents for two-photon luminescent imaging and photothermal therapy

机译:等离子体共振纳米棒作为双峰剂用于双光子发光成像和光热疗法

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Plasmon-resonant gold nanorods have outstanding potential as multifunctional agents for image-guided therapies. Nanorods have large absorption cross sections at near-infrared (NIR) frequencies, and produce two-photon luminescence (TPL) when excited by fs-pulsed laser irradiation. The TPL signals can be detected with single-particle sensitivity, enabling nanorods to be imaged in vivo while passing through blood vessels at subpicomolar concentrations. Furthermore, cells labeled with nanorods become highly susceptible to photothermal damage when irradiated at plasmon resonance, often resulting in a dramatic blebbing of the cell membrane. However, the straightforward application of gold nanorods for cell-specific labeling is obstructed by the presence of CTAB, a cationic surfactant carried over from nanorod synthesis which also promotes their nonspecific uptake into cells. Careful exchange and replacement of CTAB can be achieved by introducing oligoethyleneglycol (OEG) units capable of chemisorption onto nanorod surfaces by in situ dithiocarbamate formation, a novel method of surface functionalization. Nanorods with a dense coating of methyl-terminated OEG chains are shielded from nonspecific cell uptake, whereas nanorods functionalized with folate-terminated OEG chains accumulate on the surface of tumor cells overexpressing their cognate receptor, with subsequent delivery of photoinduced cell damage at low laser fluence.
机译:等离子体共振金纳米棒作为图像引导疗法的多功能剂具有巨大的潜力。纳米棒在近红外(NIR)频率下具有较大的吸收截面,并且在被fs脉冲激光辐射激发时会产生双光子发光(TPL)。 TPL信号可以单粒子灵敏度检测,使纳米棒可以在体内成像,同时以亚皮摩尔浓度通过血管。此外,标记有纳米棒的细胞在受到等离振子共振辐射时变得高度易受光热损害,通常会导致细胞膜剧烈起泡。但是,金纳米棒直接用于细胞特异性标记的应用因CTAB的存在而受到阻碍,CTAB是从纳米棒合成中继承下来的阳离子表面活性剂,它也促进了它们对细胞的非特异性吸收。可以通过引入能够通过原位二硫代氨基甲酸酯形成(一种新的表面功能化方法)化学吸附到纳米棒表面上的低聚乙二醇(OEG)单元来实现CTAB的仔细交换和替换。具有甲基末端OEG链的致密涂层的纳米棒可防止非特异性细胞摄取,而以叶酸末端OEG链功能化的纳米棒会积聚在过表达其同源受体的肿瘤细胞表面,随后以低激光通量传递光诱导的细胞损伤。

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