Center for Integrated Protein Science (CIPSM) and Center for Advanced Light Microscopy (CALM), Department of Biology II, Ludwig Maximilians University (LMU), Martinsried, Germany.
Micron Advanced Bioimaging Unit, Department of Biochemistry, University of Oxford, Oxford, UK.
Nat Protoc. 2017 May;12(5):1011-1028. doi: 10.1038/nprot.2017.020. Epub 2017 Apr 13.
3D structured illumination microscopy (3D-SIM) is the super-resolution technique of choice for multicolor volumetric imaging. Here we provide a validated sample preparation protocol for labeling nuclei of cultured mammalian cells, image acquisition and registration practices, and downstream image analysis of nuclear structures and epigenetic marks. Using immunostaining and replication labeling combined with image segmentation, centroid mapping and nearest-neighbor analyses in open-source environments, 3D maps of nuclear structures are analyzed in individual cells and normalized to fluorescence standards on the nanometer scale. This protocol fills an unmet need for the application of 3D-SIM to the technically challenging nuclear environment, and subsequent quantitative analysis of 3D nuclear structures and epigenetic modifications. In addition, it establishes practical guidelines and open-source solutions using ImageJ/Fiji and the TANGO plugin for high-quality and routinely comparable data generation in immunostaining experiments that apply across model systems. From sample preparation through image analysis, the protocol can be executed within one week.
3D 结构光照明显微镜(3D-SIM)是多色体积成像的首选超分辨率技术。在这里,我们提供了一种经过验证的用于标记培养的哺乳动物细胞核的样本制备方案,用于图像采集和配准实践,以及核结构和表观遗传标记的下游图像分析。使用免疫染色和复制标记与开源环境中的图像分割、质心映射和最近邻分析相结合,在单个细胞中分析核结构的 3D 图谱,并在纳米尺度上对荧光标准进行归一化。该方案填补了将 3D-SIM 应用于技术上具有挑战性的核环境以及随后对 3D 核结构和表观遗传修饰进行定量分析的应用空白。此外,它使用 ImageJ/Fiji 和 TANGO 插件为免疫染色实验建立了实用的指南和开源解决方案,该实验适用于多种模型系统,并可生成高质量且可常规比较的数据。从样本制备到图像分析,该方案可以在一周内完成。