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Fluoromodule-based reporter/probes designed for in vivo fluorescence imaging

机译:基于荧光模块的报告子/探针设计用于体内荧光成像

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摘要

Optical imaging of whole, living animals has proven to be a powerful tool in multiple areas of preclinical research and has allowed noninvasive monitoring of immune responses, tumor and pathogen growth, and treatment responses in longitudinal studies. However, fluorescence-based studies in animals are challenging because tissue absorbs and autofluoresces strongly in the visible light spectrum. These optical properties drive development and use of fluorescent labels that absorb and emit at longer wavelengths. Here, we present a far-red absorbing fluoromodule–based reporter/probe system and show that this system can be used for imaging in living mice. The probe we developed is a fluorogenic dye called SC1 that is dark in solution but highly fluorescent when bound to its cognate reporter, Mars1. The reporter/probe complex, or fluoromodule, produced peak emission near 730 nm. Mars1 was able to bind a variety of structurally similar probes that differ in color and membrane permeability. We demonstrated that a tool kit of multiple probes can be used to label extracellular and intracellular reporter–tagged receptor pools with 2 colors. Imaging studies may benefit from this far-red excited reporter/probe system, which features tight coupling between probe fluorescence and reporter binding and offers the option of using an expandable family of fluorogenic probes with a single reporter gene.
机译:整个活体动物的光学成像已被证明是临床前研究多个领域的强大工具,并允许在纵向研究中对免疫反应,肿瘤和病原体生长以及治疗反应进行无创监测。但是,在动物中进行基于荧光的研究具有挑战性,因为组织在可见光谱中会强烈吸收并自发荧光。这些光学特性推动了荧光标记的发展和使用,这些荧光标记可以吸收和发射更长的波长。在这里,我们介绍了一种基于远红外吸收性荧光模块的报告分子/探针系统,并表明该系统可用于活体小鼠的成像。我们开发的探针是一种称为SC1的荧光染料,该溶液在溶液中呈黑色,但在与其同源的报道分子Mars1结合时发出高荧光。报道分子/探针复合物或氟模块在730 nm附近产生峰值发射。 Mars1能够结合颜色和膜渗透性不同的各种结构相似的探针。我们证明了可以使用多种探针的工具套件来标记两种颜色的细胞外和细胞内记者标记的受体库。成像研究可能会受益于这种远红外激发的报道基因/探针系统,该系统具有探针荧光和报道分子结合紧密结合的特点,并提供了使用具有单个报道基因的可扩展荧光探针家族的选择。

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