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超分辨率SPEED显微镜在细胞动力学研究中的应用。

Application of Super-resolution SPEED Microscopy in the Study of Cellular Dynamics.

作者信息

Yu Wenlan, Rush Coby, Tingey Mark, Junod Samuel, Yang Weidong

机构信息

Department of Biology, Temple University, Philadelphia, Pennsylvania 19122, United States.

出版信息

Chem Biomed Imaging. 2023 Jun 24;1(4):356-371. doi: 10.1021/cbmi.3c00036. eCollection 2023 Jul 24.

Abstract

Super-resolution imaging techniques have broken the diffraction-limited resolution of light microscopy. However, acquiring three-dimensional (3D) super-resolution information about structures and dynamic processes in live cells at high speed remains challenging. Recently, the development of high-speed single-point edge-excitation subdiffraction (SPEED) microscopy, along with its 2D-to-3D transformation algorithm, provides a practical and effective approach to achieving 3D subdiffraction-limit information in subcellular structures and organelles with rotational symmetry. One of the major benefits of SPEED microscopy is that it does not rely on complex optical components and can be implemented on a standard, inverted epifluorescence microscope, simplifying the process of sample preparation and the expertise requirement. SPEED microscopy is specifically designed to obtain 2D spatial locations of individual immobile or moving fluorescent molecules inside submicrometer biological channels or cavities at high spatiotemporal resolution. The collected data are then subjected to postlocalization 2D-to-3D transformation to obtain 3D super-resolution structural and dynamic information. In recent years, SPEED microscopy has provided significant insights into nucleocytoplasmic transport across the nuclear pore complex (NPC) and cytoplasm-cilium trafficking through the ciliary transition zone. This Review focuses on the applications of SPEED microscopy in studying the structure and function of nuclear pores.

摘要

超分辨率成像技术突破了光学显微镜的衍射极限分辨率。然而,高速获取活细胞中结构和动态过程的三维(3D)超分辨率信息仍然具有挑战性。最近,高速单点边缘激发亚衍射(SPEED)显微镜及其二维到三维转换算法的发展,为在具有旋转对称性的亚细胞结构和细胞器中实现三维亚衍射极限信息提供了一种实用且有效的方法。SPEED显微镜的一个主要优点是它不依赖于复杂的光学组件,并且可以在标准的倒置落射荧光显微镜上实现,简化了样品制备过程和专业知识要求。SPEED显微镜专门设计用于以高时空分辨率获取亚微米级生物通道或腔内单个固定或移动荧光分子的二维空间位置。然后对收集到的数据进行定位后二维到三维转换,以获得三维超分辨率结构和动态信息。近年来,SPEED显微镜为通过核孔复合体(NPC)的核质运输以及通过纤毛过渡区的细胞质 - 纤毛运输提供了重要见解。本综述重点关注SPEED显微镜在研究核孔结构和功能方面的应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1a5f/11504055/460c9163e76f/im3c00036_0001.jpg

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