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Exploiting the tunability of stimulated emission depletion microscopy for super-resolution imaging of nuclear structures

机译:利用受激发射耗尽显微镜的可调谐性,对核结构进行超分辨率成像

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Imaging of nuclear structures within intact eukaryotic nuclei is imperative to understand the effect of chromatin folding on genome function. Recent developments of super-resolution fluorescence microscopy techniques combine high specificity, sensitivity, and less-invasive sample preparation procedures with the sub-diffraction spatial resolution required to image chromatin at the nanoscale. Here, we present a method to enhance the spatial resolution of a stimulated-emission depletion (STED) microscope based only on the modulation of the STED intensity during the acquisition of a STED image. This modulation induces spatially encoded variations of the fluorescence emission that can be visualized in the phasor plot and used to improve and quantify the effective spatial resolution of the STED image. We show that the method can be used to remove direct excitation by the STED beam and perform dual color imaging. We apply this method to the visualization of transcription and replication foci within intact nuclei of eukaryotic cells.
机译:要了解染色质折叠对基因组功能的影响,必须对完整的真核细胞核内的核结构进行成像。超分辨率荧光显微镜技术的最新发展将高特异性,灵敏度和低侵入性样品制备程序与在纳米级成像染色质所需的亚衍射空间分辨率结合在一起。在这里,我们提出一种仅基于STED图像采集过程中STED强度的调制来增强激发发射耗尽(STED)显微镜的空间分辨率的方法。这种调制引起了荧光发射的空间编码变化,该变化可以在相量图中可视化,并用于改善和量化STED图像的有效空间分辨率。我们表明,该方法可用于消除STED光束的直接激励并执行双色成像。我们将此方法应用于真核细胞完整核内的转录和复制灶的可视化。

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