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利用扩展显微镜对整胚果蝇进行物理放大,以实现超分辨率成像。

Using Expansion Microscopy to Physically Enlarge Whole-Mount Drosophila Embryos for Super-Resolution Imaging.

机构信息

Department of Biological Sciences, University of Arkansas.

Department of Biological Sciences, University of Arkansas;

出版信息

J Vis Exp. 2023 Apr 28(194). doi: 10.3791/64662.

Abstract

The workhorse of developmental biology is the confocal microscope, which allows researchers to determine the three-dimensional localization of tagged molecules within complex biological samples. While traditional confocal microscopes allow one to resolve two adjacent fluorescent point sources located a few hundred nanometers apart, observing the finer details of subcellular biology requires the ability to resolve signals in the order of tens of nanometers. Numerous hardware-based methods for super-resolution microscopy have been developed to allow researchers to sidestep such resolution limits, although these methods require specialized microscopes that are not available to all researchers. An alternative method for increasing resolving power is to isotropically enlarge the sample itself through a process known as expansion microscopy (ExM), which was first described by the Boyden group in 2015. ExM is not a type of microscopy per se but is rather a method for swelling a sample while preserving the relative spatial organization of its constituent molecules. The expanded sample can then be observed at an effectively increased resolution using a traditional confocal microscope. Here, we describe a protocol for implementing ExM in whole-mount Drosophila embryos, which is used to examine the localization of Par-3, myosin II, and mitochondria within the surface epithelial cells. This protocol yields an approximately four-fold increase in sample size, allowing for the detection of subcellular details that are not visible with conventional confocal microscopy. As proof of principle, an anti-GFP antibody is used to distinguish distinct pools of myosin-GFP between adjacent cell cortices, and fluorescently labeled streptavidin is used to detect endogenous biotinylated molecules to reveal the fine details of the mitochondrial network architecture. This protocol utilizes common antibodies and reagents for fluorescence labeling, and it should be compatible with many existing immunofluorescence protocols.

摘要

发育生物学的主力工具是共聚焦显微镜,它使研究人员能够确定复杂生物样本中标记分子的三维定位。虽然传统的共聚焦显微镜可以分辨相距几百纳米的两个相邻荧光点源,但要观察亚细胞生物学的更细微细节,则需要能够分辨几十纳米级的信号。已经开发出许多基于硬件的超分辨率显微镜方法,使研究人员能够绕过这种分辨率限制,尽管这些方法需要专门的显微镜,并非所有研究人员都能使用。提高分辨率的另一种方法是通过称为扩展显微镜(ExM)的过程使样品本身各向同性地放大,Boyden 小组于 2015 年首次描述了这种方法。ExM 本身并不是一种显微镜,而是一种在保持其组成分子相对空间组织的同时使样品膨胀的方法。然后可以使用传统的共聚焦显微镜在有效提高的分辨率下观察扩展的样品。在这里,我们描述了在全胚胎果蝇中实施 ExM 的方案,该方案用于检查 Par-3、肌球蛋白 II 和线粒体在表面上皮细胞中的定位。该方案使样品尺寸大约增加了四倍,从而可以检测到常规共聚焦显微镜无法看到的亚细胞细节。作为原理验证,使用抗 GFP 抗体区分相邻细胞皮质之间的肌球蛋白 GFP 的不同池,并用荧光标记的链霉亲和素检测内源性生物素化分子,以揭示线粒体网络结构的细微细节。该方案利用常见的抗体和荧光标记试剂,并且应该与许多现有的免疫荧光协议兼容。

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Expansion microscopy: principles and uses in biological research.扩展显微镜:在生物研究中的原理和应用。
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Superresolution imaging of Drosophila tissues using expansion microscopy.使用扩展显微镜对果蝇组织进行超分辨率成像。
Mol Biol Cell. 2018 Jun 15;29(12):1413-1421. doi: 10.1091/mbc.E17-10-0583. Epub 2018 Apr 24.
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