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直接嫁接策略的评估:用于在扩展显微镜中实现脂质膜和细胞骨架染色的三价锚定

Evaluation of Direct Grafting Strategies Trivalent Anchoring for Enabling Lipid Membrane and Cytoskeleton Staining in Expansion Microscopy.

作者信息

Wen Gang, Vanheusden Marisa, Acke Aline, Valli Donato, Neely Robert K, Leen Volker, Hofkens Johan

机构信息

Department of Chemistry, KU Leuven, Leuven, 3001, Belgium.

School of Chemistry, University of Birmingham, Edgbaston, Birmingham B15 2TT, United Kingdom.

出版信息

ACS Nano. 2020 Jul 28;14(7):7860-7867. doi: 10.1021/acsnano.9b09259. Epub 2020 Mar 26.

Abstract

Super-resolution fluorescence microscopy is a key tool in the elucidation of biological fine structures, providing insights into the distribution and interactions of biomolecular complexes down to the nanometer scale. Expansion microscopy is a recently developed approach for achieving nanoscale resolution on a conventional microscope. Here, biological samples are embedded in an isotropically swollen hydrogel. This physical expansion of the sample allows imaging with resolutions down to the tens-of-nanometers. However, because of the requirement that fluorescent labels are covalently bound to the hydrogel, standard, small-molecule targeting of fluorophores has proven incompatible with expansion microscopy. Here, we show a chemical linking approach that enables direct, covalent grafting of a targeting molecule and fluorophore to the hydrogel in expansion microscopy. We show application of this series of molecules in the antibody-free targeting of the cell cytoskeleton and in an example of lipid membrane staining for expansion microscopy. Furthermore, using this trivalent linker strategy, we demonstrate the benefit of introducing fluorescent labels post-expansion by visualizing an immunostaining through fluorescent oligonucleotide hybridization after expanding the polymer. Our probes allow different labeling approaches that are compatible with expansion microscopy.

摘要

超分辨率荧光显微镜是阐明生物精细结构的关键工具,能深入了解生物分子复合物在纳米尺度下的分布和相互作用。扩展显微镜是一种最近开发的方法,可在传统显微镜上实现纳米级分辨率。在这里,生物样品被嵌入各向同性膨胀的水凝胶中。样品的这种物理膨胀使得能够以低至几十纳米的分辨率进行成像。然而,由于荧光标记需要与水凝胶共价结合,事实证明,标准的小分子荧光团靶向方法与扩展显微镜不兼容。在这里,我们展示了一种化学连接方法,该方法能够在扩展显微镜中将靶向分子和荧光团直接共价接枝到水凝胶上。我们展示了这一系列分子在无抗体靶向细胞骨架以及扩展显微镜脂质膜染色示例中的应用。此外,使用这种三价连接策略,我们通过在聚合物膨胀后通过荧光寡核苷酸杂交可视化免疫染色,证明了膨胀后引入荧光标记的好处。我们的探针允许采用与扩展显微镜兼容的不同标记方法。

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