Université de Bordeaux, Laboratoire Photonique Numérique et Nanosciences, UMR 5298, 33400 Talence, France; Institut d'Optique & CNRS, LP2N UMR 5298, 33400 Talence, France.
Université de Bordeaux, Institut des Maladies Neurodégénératives, UMR 5293, 33076 Bordeaux, France; CNRS, IMN UMR 5293, 33076 Bordeaux, France.
Methods. 2020 Mar 1;174:91-99. doi: 10.1016/j.ymeth.2019.03.005. Epub 2019 Mar 9.
The brain extracellular space (ECS) is a system of narrow compartments whose intricate nanometric structure has remained elusive until very recently. Understanding such a complex organisation represents a technological challenge that requires a technique able to resolve these nanoscopic spaces and simultaneously characterize their rheological properties. We recently used single-walled carbon nanotubes (SWCNTs) as near-infrared fluorescent probes to map with nanoscale precision the local organization and rheology of the ECS. Here we expand our method by tracking single nanotubes through super-resolution imaging in rat organotypic hippocampal slices and acute brain slices from adult mice, pioneering the exploration of the adult brain ECS at the nanoscale. We found a highly heterogeneous ECS, where local rheological properties can change drastically within few nanometres. Our results suggest differences in local ECS diffusion environments in organotypic slices when compared to adult mouse slices. Data obtained from super-resolved maps of the SWCNT trajectories indicate that ECS widths may vary between brain tissue models, with a looser, less crowded nano-environment in organotypic cultured slices.
脑细胞外空间(ECS)是一个狭窄隔室的系统,其错综复杂的纳米结构直到最近才被揭示。理解这样一个复杂的组织代表了一个技术挑战,需要一种能够解析这些纳米空间并同时表征其流变特性的技术。我们最近使用单壁碳纳米管(SWCNTs)作为近红外荧光探针,以纳米级精度绘制 ECS 的局部组织和流变特性图。在这里,我们通过在大鼠器官型海马切片和成年小鼠急性脑切片中的超分辨率成像来跟踪单根纳米管,从而扩展了我们的方法,开创了在纳米尺度上探索成年大脑 ECS 的先河。我们发现 ECS 高度异质,局部流变特性在几纳米内可能会发生剧烈变化。与成年小鼠切片相比,我们的结果表明器官型切片中局部 ECS 扩散环境存在差异。从 SWCNT 轨迹的超分辨图谱中获得的数据表明,ECS 宽度可能因脑组织模型而异,在器官型培养切片中,纳米环境更宽松,拥挤程度更低。