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高通量扩展显微镜实现了可扩展的超高分辨率成像。

High-throughput expansion microscopy enables scalable super-resolution imaging.

机构信息

Department of Biological Engineering, Massachusetts Institute of Technology, Cambridge, United States.

Department of Biology, Massachusetts Institute of Technology, Cambridge, United States.

出版信息

Elife. 2024 Nov 26;13:RP96025. doi: 10.7554/eLife.96025.

Abstract

Expansion microscopy (ExM) enables nanoscale imaging using a standard confocal microscope through the physical, isotropic expansion of fixed immunolabeled specimens. ExM is widely employed to image proteins, nucleic acids, and lipid membranes in single cells; however, current methods limit the number of samples that can be processed simultaneously. We developed High-throughput Expansion Microscopy (HiExM), a robust platform that enables expansion microscopy of cells cultured in a standard 96-well plate. Our method enables ~4.2 x expansion of cells within individual wells, across multiple wells, and between plates. We also demonstrate that HiExM can be combined with high-throughput confocal imaging platforms to greatly improve the ease and scalability of image acquisition. As an example, we analyzed the effects of doxorubicin, a known cardiotoxic agent, on human cardiomyocytes (CMs) as measured by the Hoechst signal across the nucleus. We show a dose-dependent effect on nuclear DNA that is not observed in unexpanded CMs, suggesting that HiExM improves the detection of cellular phenotypes in response to drug treatment. Our method broadens the application of ExM as a tool for scalable super-resolution imaging in biological research applications.

摘要

扩展显微镜(ExM)通过固定免疫标记标本的物理各向同性扩展,使标准共聚焦显微镜能够进行纳米级成像。ExM 广泛用于在单细胞中成像蛋白质、核酸和脂质膜;然而,目前的方法限制了可同时处理的样本数量。我们开发了高通量扩展显微镜(HiExM),这是一个强大的平台,可实现标准 96 孔板中培养的细胞的扩展显微镜检查。我们的方法可以实现单个孔、多个孔和板之间的细胞约 4.2 倍的扩展。我们还证明,HiExM 可以与高通量共焦成像平台结合使用,以极大地提高图像采集的易用性和可扩展性。例如,我们分析了多柔比星(一种已知的心脏毒性剂)对人心肌细胞(CMs)的影响,通过核内 Hoechst 信号测量。我们发现核 DNA 呈剂量依赖性,在未扩展的 CMs 中未观察到这种现象,这表明 HiExM 提高了对药物治疗的细胞表型的检测能力。我们的方法拓宽了 ExM 的应用范围,使其成为生物研究应用中可扩展的超分辨率成像工具。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/19ad/11594540/26920dc81d72/elife-96025-fig1.jpg

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