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Multicolor Fluorescence Nanoscopy in Fixed and Living Cells by Exciting Conventional Fluorophores with a Single Wavelength

机译:固定和活细胞中激发单个波长的传统荧光团的多色荧光纳米技术

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摘要

Current far-field fluorescence nanoscopes provide subdiffraction resolution by exploiting a mechanism of fluorescence inhibition. This mechanism is implemented such that features closer than the diffraction limit emit separately when simultaneously exposed to excitation light. A basic mechanism for such transient fluorescence inhibition is the depletion of the fluorophore ground state by transferring it (via a triplet) in a dark state, a mechanism which is workable in most standard dyes. Here we show that microscopy based on ground state depletion followed by individual molecule return (GSDIM) can effectively provide multicolor diffraction-unlimited resolution imaging of immunolabeled fixed and SNAP-tag labeled living cells. Implemented with standard labeling techniques, GSDIM is demonstrated to separate up to four different conventional fluorophores using just two detection channels and a single laser line. The method can be expanded to even more colors by choosing optimized dichroic mirrors and selecting marker molecules with negligible inhomogeneous emission broadening.
机译:当前的远场荧光纳米显微镜通过利用荧光抑制机制来提供亚衍射分辨率。实施该机制使得当同时暴露于激发光时,比衍射极限更近的特征分开发射。这种瞬时荧光抑制的基本机理是通过在黑暗状态下转移荧光团基态(通过三重态)来耗尽基态,该机理在大多数标准染料中都适用。在这里,我们显示基于基态耗竭然后再返回单个分子(GSDIM)的显微镜可以有效地提供免疫标记的固定和SNAP标签标记的活细胞的多色衍射无限制分辨率成像。通过标准标记技术实施,GSDIM被证明仅使用两个检测通道和一条激光线就可以分离多达四种不同的常规荧光团。通过选择优化的二向色镜并选择具有可忽略的不均匀发射展宽的标记分子,可以将该方法扩展为更多的颜色。

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