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Photoswitchable Spasers with a Plasmonic Core and Photoswitchable Fluorescent Proteins

机译:具有等离子核心和光开关荧光蛋白的光开关飞镖

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摘要

Photoswitchable fluorescent proteins (PFPs) that can change fluorescence color upon excitation have revolutionized many applications of light such as tracking protein movement, super-resolution imaging, identification of circulating cells, and optical data storage. Nevertheless, the relatively weak fluorescence of PFPs limits their applications in biomedical imaging due to strong tissue autofluorecence background. Conversely, plasmonic nanolasers, also called spasers, have demonstrated potential to generate super-bright stimulated emissions even inside single cells. Nevertheless, the development of photoswitchable spasers that can shift their stimulated emission color in response to light is challenging. Here, we introduce the novel concept of spasers using a PFP layer as the active medium surrounding a plasmonic core. The proof of principle was demonstrated by synthesizing a multilayer nanostructure on the surface of a spherical gold core, with a non-absorbing thin polymer shell and the PFP Dendra2 dispersed in the matrix of a biodegradable polymer. We have demonstrated photoswitching of spontaneous and stimulated emission in these spasers below and above the spasing threshold, respectively, at different spectral ranges. The plasmonic core of the spasers serves also as a photothermal (and potentially photoacoustic) contrast agent, allowing for photothermal imaging of the spasers. These results suggest that multimodal photoswitchable spasers could extend the traditional applications of spasers and PFPs in laser spectroscopy, multicolor cytometry, and theranostics with the potential to track, identify, and kill abnormal cells in circulation.
机译:可以在激发时改变荧光颜色的光开关荧光蛋白(PFP)彻底改变了光的许多应用,例如跟踪蛋白运动,超分辨率成像,循环细胞的鉴定和光学数据存储。然而,由于强的组织自发荧光背景,PFP的相对较弱的荧光限制了它们在生物医学成像中的应用。相反,等离激元纳米激光,也称spasers,已显示出即使在单个细胞内部也可能产生超高光激发发射的潜力。然而,开发可响应于光而改变其受激发射颜色的可光转换的飞剪具有挑战性。在这里,我们介绍了使用PFP层作为围绕等离激元核心的活性介质的Spasers的新概念。通过合成球形金核表面上的多层纳米结构,不吸收聚合物的薄壳和分散在可生物降解的聚合物基质中的PFP Dendra2,证明了原理的证明。我们已经证明,在这些散发器中,在不同的光谱范围内,低于和高于散发阈值时,自发发射光和受激发射发生光开关。悬梁的等离子核心还用作光热(和可能的光声)造影剂,从而可以对悬梁进行光热成像。这些结果表明,多模式光开关sparser可以扩展saspers和PFP在激光光谱学,多色细胞术和治疗学中的传统应用,具有跟踪,识别和杀死循环中异常细胞的潜力。

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