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High-numerical-aperture cryogenic light microscopy for increased precision of superresolution reconstructions

机译:高数值孔径的低温光学显微镜可提高超分辨率重建的精度

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摘要

Superresolution microscopy has fundamentally altered our ability to resolve subcellular proteins, but improving on these techniques to study dense structures composed of single-molecule-sized elements has been a challenge. One possible approach to enhance superresolution precision is to use cryogenic fluorescent imaging, reported to reduce fluorescent protein bleaching rates, thereby increasing the precision of superresolution imaging. Here, we describe an approach to cryogenic photoactivated localization microscopy (cPALM) that permits the use of a room-temperature high-numerical-aperture objective lens to image frozen samples in their native state. We find that cPALM increases photon yields and show that this approach can be used to enhance the effective resolution of two photoactivatable/switchable fluorophore-labeled structures in the same frozen sample. This higher resolution, two-color extension of the cPALM technique will expand the accessibility of this approach to a range of laboratories interested in more precise reconstructions of complex subcellular targets.
机译:超分辨率显微镜从根本上改变了我们分辨亚细胞蛋白的能力,但是改进这些技术以研究由单分子大小的元素组成的致密结构一直是一个挑战。一种提高超分辨率精度的可能方法是使用低温荧光成像技术,据报道该技术可降低荧光蛋白的漂白率,从而提高超分辨率成像的精度。在这里,我们描述了一种低温光活化定位显微镜(cPALM)的方法,该方法允许使用室温高数值孔径物镜对原始状态的冷冻样品进行成像。我们发现cPALM增加了光子产量,并表明该方法可用于增强同一冷冻样品中两个可光激活/可切换的荧光团标记结构的有效分辨率。 cPALM技术的这种高分辨率,双色扩展将使该方法的可及性扩展至对复杂亚细胞靶标的更精确重建感兴趣的一系列实验室。

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