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当前真菌囊泡成像的显微镜技术策略:从细胞内运输和分泌到分离囊泡的内部结构。

Current Microscopy Strategies to Image Fungal Vesicles: From the Intracellular Trafficking and Secretion to the Inner Structure of Isolated Vesicles.

机构信息

Instituto de Biofísica Carlos Chagas Filho, Universidade Federal do Rio de Janeiro, Rio de Janeiro, Brazil.

Instituto de Ciências Biomédicas, Universidade Federal do Rio de Janeiro, Rio de Janeiro, Brazil.

出版信息

Curr Top Microbiol Immunol. 2021;432:139-159. doi: 10.1007/978-3-030-83391-6_11.

Abstract

Extracellular vesicles (EVs) are nano-sized structures that play important roles in a variety of biological processes among members of the Eukaryota domain. They have been studied since the 1940s and a broader use of different microscopy techniques to image either isolated vesicles or vesicles within the intracellular milieu (trafficking) has been limited by their nanometric size, usually below the resolution limit of most standard light microscopes. The development of genetically encoded fluorescent proteins and fluorescent probes able to switch between "on" and "off" states, as well the improvement in computer-assisted microscopy, photon detector devices, illumination designs, and imaging strategies in the late Twentieth century, boosted the use of light microscopes to provide structural and functional information at the sub-diffraction resolution, taking advantage of a nondestructive analytical probe such light, and opening new possibilities in the study of life at the nanoscale. As well, traditional and novel electron microscopy techniques have been widely used in the characterization of subcellular compartments, either isolated or in situ, providing a comprehensive understanding of their functional role in many cellular processes. Here, we present basic aspects of some of these techniques that have already been applied and their potential application to the study of fungal vesicles.

摘要

细胞外囊泡(EVs)是纳米大小的结构,在真核生物域成员之间的各种生物学过程中发挥重要作用。自 20 世纪 40 年代以来,人们一直在研究它们,但是由于其纳米尺寸,通常低于大多数标准显微镜的分辨率极限,因此限制了使用不同的显微镜技术来对分离的囊泡或细胞内环境中的囊泡(运输)进行成像。遗传编码的荧光蛋白和能够在“开”和“关”状态之间切换的荧光探针的发展,以及计算机辅助显微镜、光子探测器设备、照明设计和 20 世纪后期成像策略的改进,促进了使用显微镜在亚衍射分辨率下提供结构和功能信息,利用光这种非破坏性的分析探针,并在纳米尺度的生命研究中开辟了新的可能性。此外,传统和新型电子显微镜技术已广泛用于分离或原位的亚细胞区室的表征,为它们在许多细胞过程中的功能作用提供了全面的理解。在这里,我们介绍了已经应用的这些技术的一些基本方面及其在真菌囊泡研究中的潜在应用。

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