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通过共聚焦活细胞成像和 3D 电子显微镜关联研究单细胞器动力学与 3D 结构的关系。

Single organelle dynamics linked to 3D structure by correlative live-cell imaging and 3D electron microscopy.

机构信息

Section Cell Biology, Center for Molecular Medicine, University Medical Center Utrecht, Utrecht University, Utrecht, The Netherlands.

Section Molecular Biophysics, Debye Institute for Nanomaterials Science, Utrecht University, Utrecht, The Netherlands.

出版信息

Traffic. 2018 May;19(5):354-369. doi: 10.1111/tra.12557. Epub 2018 Mar 25.

Abstract

Live-cell correlative light-electron microscopy (live-cell-CLEM) integrates live movies with the corresponding electron microscopy (EM) image, but a major challenge is to relate the dynamic characteristics of single organelles to their 3-dimensional (3D) ultrastructure. Here, we introduce focused ion beam scanning electron microscopy (FIB-SEM) in a modular live-cell-CLEM pipeline for a single organelle CLEM. We transfected cells with lysosomal-associated membrane protein 1-green fluorescent protein (LAMP-1-GFP), analyzed the dynamics of individual GFP-positive spots, and correlated these to their corresponding fine-architecture and immediate cellular environment. By FIB-SEM we quantitatively assessed morphological characteristics, like number of intraluminal vesicles and contact sites with endoplasmic reticulum and mitochondria. Hence, we present a novel way to integrate multiple parameters of subcellular dynamics and architecture onto a single organelle, which is relevant to address biological questions related to membrane trafficking, organelle biogenesis and positioning. Furthermore, by using CLEM to select regions of interest, our method allows for targeted FIB-SEM, which significantly reduces time required for image acquisition and data processing.

摘要

活细胞相关光电子显微镜技术(live-cell-CLEM)将活细胞电影与相应的电子显微镜(EM)图像相结合,但主要挑战是将单个细胞器的动态特征与其三维(3D)超微结构相关联。在这里,我们在模块化活细胞 CLEM 管道中引入聚焦离子束扫描电子显微镜(FIB-SEM),用于单个细胞器 CLEM。我们用溶酶体相关膜蛋白 1-绿色荧光蛋白(LAMP-1-GFP)转染细胞,分析单个 GFP 阳性斑点的动态,并将其与相应的精细结构和直接的细胞环境相关联。通过 FIB-SEM,我们定量评估了形态特征,如腔内囊泡的数量以及与内质网和线粒体的接触位点。因此,我们提出了一种将亚细胞动力学和结构的多个参数整合到单个细胞器上的新方法,这对于解决与膜运输、细胞器发生和定位相关的生物学问题具有重要意义。此外,通过使用 CLEM 选择感兴趣的区域,我们的方法允许进行靶向 FIB-SEM,这显著减少了图像采集和数据处理所需的时间。

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