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Modular low-light microscope for imaging cellular bioluminescence and radioluminescence

机译:模块化微光显微镜用于成像细胞生物发光和放射发光

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摘要

Low-light microscopy methods are receiving increased attention as new applications have emerged. One such application is to allow longitudinal imaging of light-sensitive cells with no phototoxicity and no photobleaching of fluorescent biomarkers. Another application is for imaging signals that are inherently dim and undetectable using standard microscopy, such as bioluminescence, chemiluminescence, or radioluminescence. In this protocol, we provide instructions on how to build a modular low-light microscope (1-4 d) by coupling two microscope objective lenses, back-to-back from each other, using standard optomechanical components. We also provide directions on how to image dim signals such as radioluminescence (1-1.5 h), bioluminescence (∼30 min) and low-excitation fluorescence (∼15 min). In particular, radioluminescence microscopy is explained in detail as it is a newly developed technique, which enables the study of small molecule transport (eg. radiolabeled drugs, metabolic precursors, and nuclear medicine contrast agents) by single cells without perturbing endogenous biochemical processes. In this imaging technique, a scintillator crystal (eg. CdWO4) is placed in close proximity to the radiolabeled cells, where it converts the radioactive decays into optical flashes detectable using a sensitive camera. Using the image reconstruction toolkit provided in this protocol, the flashes can be reconstructed to yield high-resolution image of the radiotracer distribution. With appropriate timing, the three aforementioned imaging modalities may be performed altogether on a population of live cells, allowing the user to perform parallel functional studies of cell heterogeneity at the single-cell level.
机译:随着新应用的出现,低光显微镜方法越来越受到关注。一种这样的应用是允许对光敏细胞进行纵向成像,而没有光毒性和荧光生物标记物的光漂白。另一个应用是对本质上暗淡且无法使用标准显微镜(例如生物发光,化学发光或放射发光)检测到的信号进行成像。在此协议中,我们提供有关如何通过使用标准的光机械组件彼此背对背耦合两个显微镜物镜来构建模块化微光显微镜(1-4 d)的说明。我们还提供了有关如何对暗信号成像的指导,例如放射发光(1-1.5小时),生物发光(约30分钟)和低激发荧光(约15分钟)。特别是,由于放射线显微技术是一项新近开发的技术,因此将对其进行详细说明,该技术能够在不干扰内源性生化过程的情况下通过单个细胞研究小分子转运(例如,放射性标记药物,代谢前体和核医学造影剂)。在这种成像技术中,将闪烁体晶体(例如CdWO4)紧靠放射性标记的细胞放置,将放射性衰变转换为可使用敏感相机检测到的闪光。使用此协议中提供的图像重建工具包,可以重建闪光灯以生成放射性示踪剂分布的高分辨率图像。在适当的时机上,可以在一组活细胞上一起执行上述三种成像方式,从而允许用户在单细胞水平上进行细胞异质性的并行功能研究。

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