Prabhakar Neeraj, Belevich Ilya, Peurla Markus, Heiligenstein Xavier, Chang Huan-Cheng, Sahlgren Cecilia, Jokitalo Eija, Rosenholm Jessica M
Pharmaceutical Sciences Laboratory, Faculty of Science and Engineering, Åbo Akademi University, 20520 Turku, Finland.
Cell Biology, Faculty of Science and Engineering, Åbo Akademi University, 20520 Turku, Finland.
Nanomaterials (Basel). 2020 Dec 23;11(1):14. doi: 10.3390/nano11010014.
Three-dimensional correlative light and electron microscopy (3D CLEM) is attaining popularity as a potential technique to explore the functional aspects of a cell together with high-resolution ultrastructural details across the cell volume. To perform such a 3D CLEM experiment, there is an imperative requirement for multi-modal probes that are both fluorescent and electron-dense. These multi-modal probes will serve as landmarks in matching up the large full cell volume datasets acquired by different imaging modalities. Fluorescent nanodiamonds (FNDs) are a unique nanosized, fluorescent, and electron-dense material from the nanocarbon family. We hereby propose a novel and straightforward method for executing 3D CLEM using FNDs as multi-modal landmarks. We demonstrate that FND is biocompatible and is easily identified both in living cell fluorescence imaging and in serial block-face scanning electron microscopy (SB-EM). We illustrate the method by registering multi-modal datasets.
三维相关光电子显微镜技术(3D CLEM)作为一种潜在技术正日益受到关注,它能够在整个细胞体积范围内,将细胞的功能方面与高分辨率超微结构细节相结合进行探索。为了开展这样的3D CLEM实验,对兼具荧光性和电子密度的多模态探针有着迫切需求。这些多模态探针将作为匹配不同成像方式获取的大型全细胞体积数据集的标志物。荧光纳米金刚石(FNDs)是纳米碳家族中一种独特的纳米尺寸、具有荧光性且电子密度高的材料。我们在此提出一种新颖且简便的方法,使用FNDs作为多模态标志物来进行3D CLEM。我们证明FND具有生物相容性,并且在活细胞荧光成像和连续块面扫描电子显微镜(SB - EM)中都易于识别。我们通过配准多模态数据集来说明该方法。