University of Bordeaux, 33077 Bordeaux, France; Interdisciplinary Institute for Neuroscience, CNRS UMR 5297, 33077 Bordeaux, France; Department of Neuroscience, University of the Basque Country UPV/EHU, 48940 Leioa, Spain; Achucarro Basque Center for Neuroscience, 48940 Leioa, Spain.
University of Bordeaux, 33077 Bordeaux, France; Interdisciplinary Institute for Neuroscience, CNRS UMR 5297, 33077 Bordeaux, France.
Cell. 2018 Feb 22;172(5):1108-1121.e15. doi: 10.1016/j.cell.2018.02.007.
The extracellular space (ECS) of the brain has an extremely complex spatial organization, which has defied conventional light microscopy. Consequently, despite a marked interest in the physiological roles of brain ECS, its structure and dynamics remain largely inaccessible for experimenters. We combined 3D-STED microscopy and fluorescent labeling of the extracellular fluid to develop super-resolution shadow imaging (SUSHI) of brain ECS in living organotypic brain slices. SUSHI enables quantitative analysis of ECS structure and reveals dynamics on multiple scales in response to a variety of physiological stimuli. Because SUSHI produces sharp negative images of all cellular structures, it also enables unbiased imaging of unlabeled brain cells with respect to their anatomical context. Moreover, the extracellular labeling strategy greatly alleviates problems of photobleaching and phototoxicity associated with traditional imaging approaches. As a straightforward variant of STED microscopy, SUSHI provides unprecedented access to the structure and dynamics of live brain ECS and neuropil.
脑细胞外空间(ECS)具有极其复杂的空间组织,这使得传统的光学显微镜无法对其进行研究。因此,尽管人们对脑 ECS 的生理作用非常感兴趣,但它的结构和动态仍然在很大程度上无法被实验者所了解。我们结合 3D-STED 显微镜和细胞外液的荧光标记,开发了活组织脑切片中脑 ECS 的超高分辨率阴影成像(SUSHI)技术。SUSHI 能够对 ECS 结构进行定量分析,并揭示多种生理刺激下的多种尺度的动态变化。由于 SUSHI 会对所有细胞结构产生清晰的负像,因此它还可以在不进行标记的情况下,以细胞的解剖学背景为参照,对脑细胞进行无偏成像。此外,细胞外标记策略极大地缓解了传统成像方法中与光漂白和光毒性相关的问题。作为 STED 显微镜的一个简单变体,SUSHI 为研究活体脑 ECS 和神经丛的结构和动态提供了前所未有的机会。