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Excitation-multiplexed multicolor superresolution imaging with fm-STORM and fm-DNA-PAINT

机译:利用fm-STORM和fm-DNA-PAINT进行激发多路多色超分辨率成像

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摘要

Recent advancements in single-molecule-based superresolution microscopy have made it possible to visualize biological structures with unprecedented spatial resolution. Determining the spatial coorganization of these structures within cells under physiological and pathological conditions is an important biological goal. This goal has been stymied by the current limitations of carrying out superresolution microscopy in multiple colors. Here, we develop an approach for simultaneous multicolor superresolution imaging which relies solely on fluorophore excitation, rather than fluorescence emission properties. By modulating the intensity of the excitation lasers at different frequencies, we show that the color channel can be determined based on the fluorophore’s response to the modulated excitation. We use this frequency multiplexing to reduce the image acquisition time of multicolor superresolution DNA-PAINT while maintaining all its advantages: minimal color cross-talk, minimal photobleaching, maximal signal throughput, ability to maintain the fluorophore density per imaged color, and ability to use the full camera field of view. We refer to this imaging modality as “frequency multiplexed DNA-PAINT,” or fm-DNA-PAINT for short. We also show that frequency multiplexing is fully compatible with STORM superresolution imaging, which we term fm-STORM. Unlike fm-DNA-PAINT, fm-STORM is prone to color cross-talk. To overcome this caveat, we further develop a machine-learning algorithm to correct for color cross-talk with more than 95% accuracy, without the need for prior information about the imaged structure.
机译:基于单分子的超分辨率显微镜的最新进展使得以前所未有的空间分辨率可视化生物结构成为可能。确定在生理和病理条件下细胞内这些结构的空间共组织是重要的生物学目标。当前的局限性在于以多种颜色进行超分辨率显微术的局限。在这里,我们开发了一种同时进行多色超分辨率成像的方法,该方法仅依赖于荧光团激发而不是荧光发射特性。通过调制不同频率的激发激光的强度,我们表明可以根据荧光团对调制激发的响应来确定颜色通道。我们使用这种频率复用来减少多色超分辨率DNA-PAINT的图像获取时间,同时保持其所有优势:最小的颜色串扰,最小的光漂白,最大的信号通过量,保持每种成像颜色的荧光团密度的能力以及使用的能力完整的相机视野。我们将这种成像方式称为“频率复用DNA-PAINT”,或简称为fm-DNA-PAINT。我们还表明,频率多路复用与STORM超分辨率成像(我们称为fm-STORM)完全兼容。与fm-DNA-PAINT不同,fm-STORM容易出现颜色串扰。为了克服这一警告,我们进一步开发了一种机器学习算法,可以以95%以上的准确度校正色彩串扰,而无需有关成像结构的先验信息。

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