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关于……的扩展显微镜技术

Expansion Microscopy on .

作者信息

Korovesi Artemis G, Morgado Leonor, Fumasoni Marco, Henriques Ricardo, Heil Hannah S, Del Rosario Mario

机构信息

Instituto Gulbenkian de Ciência, Oeiras, Portugal.

MRC-Laboratory for Molecular Cell Biology. University College London, London, United Kingdom.

出版信息

MicroPubl Biol. 2022 May 4;2022. doi: 10.17912/micropub.biology.000566. eCollection 2022.

Abstract

The unicellular eukaryote is an invaluable resource for the study of basic eukaryotic cellular and molecular processes. However, its small size compared to other eukaryotic organisms the study of subcellular structures is challenging. Expansion microscopy (ExM) holds great potential to study the intracellular architecture of yeast, especially when paired with pan-labelling techniques visualising the full protein content inside cells. ExM allows to increase imaging resolution by physically enlarging a fixed sample that is embedded and cross-linked to a swellable gel followed by isotropic expansion in water. The cell wall present in fungi - including yeast - and Gram-positive bacteria is a resilient structure that resists denaturation and conventional digestion processes usually used in ExM protocols, resulting in uneven expansion. Thus, the digestion of the cell wall while maintaining the structure of the resulting protoplasts is a crucial step to ensure isotropic expansion. For this reason, specific experimental strategies are needed, and only a few protocols are currently available. We have developed a modified ExM protocol for , with 4x expansion factor, which allows the visualisation of the ultrastructure of the cells. Here, we describe the experimental procedure in detail, focusing on the most critical steps required to achieve isotropic expansion for ExM of .

摘要

单细胞真核生物是研究基本真核细胞和分子过程的宝贵资源。然而,与其他真核生物相比,其体积较小,对亚细胞结构的研究具有挑战性。扩展显微镜技术(ExM)在研究酵母细胞内结构方面具有巨大潜力,特别是与可视化细胞内全部蛋白质含量的全标记技术结合使用时。ExM通过物理放大嵌入并交联到可膨胀凝胶中的固定样品,然后在水中进行各向同性膨胀,从而提高成像分辨率。真菌(包括酵母)和革兰氏阳性细菌中存在的细胞壁是一种有弹性的结构,它能抵抗变性和ExM方案中通常使用的传统消化过程,导致膨胀不均匀。因此,在保持所得原生质体结构的同时消化细胞壁是确保各向同性膨胀的关键步骤。出于这个原因,需要特定的实验策略,目前只有少数方案可用。我们已经开发了一种用于[具体对象]的改良ExM方案,膨胀因子为4倍,该方案能够可视化细胞的超微结构。在此,我们详细描述实验过程,重点关注实现[具体对象]ExM各向同性膨胀所需的最关键步骤。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4307/9132724/0a4aa50e86db/25789430-2022-micropub.biology.000566.jpg

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