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受激发射损耗显微镜。

Stimulated Emission Depletion Microscopy.

机构信息

Royal Institute of Technology (KTH) , Dept Applied Physics, SciLifeLab, 17165 Solna, Sweden.

Royal Institute of Technology (KTH) , Dept Applied Physics, Albanova Univ Center, 10691 Stockholm, Sweden.

出版信息

Chem Rev. 2017 Jun 14;117(11):7377-7427. doi: 10.1021/acs.chemrev.6b00653. Epub 2017 Mar 6.

Abstract

Despite its short history, diffraction-unlimited fluorescence microscopy techniques have already made a substantial imprint in the biological sciences. In this review, we describe how stimulated emission depletion (STED) imaging originally evolved, how it compares to other optical super-resolution imaging techniques, and what advantages it provides compared to previous golden-standards for biological microscopy, such as diffraction-limited optical microscopy and electron microscopy. We outline the prerequisites for successful STED imaging experiments, emphasizing the equally critical roles of instrumentation, sample preparation, and photophysics, and describe major evolving strategies for how to push the borders of STED imaging even further in life science. Finally, we provide examples of how STED nanoscopy can be applied, within three different fields with particular potential for STED imaging experiments: neuroscience, plasma membrane biophysics, and subcellular clinical diagnostics. In these areas, and in many more, STED imaging can be expected to play an increasingly important role in the future.

摘要

尽管历史短暂,但衍射极限荧光显微镜技术已经在生物科学领域留下了深刻的印记。在这篇综述中,我们描述了受激发射损耗(STED)成像技术是如何发展起来的,它与其他光学超分辨率成像技术有何不同,以及与生物显微镜的先前金标准(如衍射受限光学显微镜和电子显微镜)相比,它具有哪些优势。我们概述了成功进行 STED 成像实验的前提条件,强调了仪器、样品制备和光物理同样至关重要的作用,并描述了推动 STED 成像技术在生命科学领域进一步发展的主要策略。最后,我们提供了一些示例,说明 STED 纳米显微镜如何在三个具有 STED 成像实验特别潜力的不同领域中应用:神经科学、质膜生物物理学和亚细胞临床诊断。在这些领域以及更多领域中,可以预期 STED 成像将在未来发挥越来越重要的作用。

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