Marasca Federica, Cortesi Alice, Manganaro Lara, Bodega Beatrice
Istituto Nazionale di Genetica Molecolare "Romeo ed Enrica Invernizzi", INGM.
Istituto Nazionale di Genetica Molecolare "Romeo ed Enrica Invernizzi", INGM;
J Vis Exp. 2020 Jan 25(155). doi: 10.3791/60712.
A major question in cell biology is genomic organization within the nuclear space and how chromatin architecture can influence processes such as gene expression, cell identity and differentiation. Many approaches developed to study the 3D architecture of the genome can be divided into two complementary categories: chromosome conformation capture based technologies (C-technologies) and imaging. While the former is based on capturing the chromosome conformation and proximal DNA interactions in a population of fixed cells, the latter, based on DNA fluorescence in situ hybridization (FISH) on 3D-preserved nuclei, allows contemporary visualization of multiple loci at a single cell level (multicolor), examining their interactions and distribution within the nucleus (3D multicolor DNA FISH). The technique of 3D multicolor DNA FISH has a limitation of visualizing only a few predetermined loci, not permitting a comprehensive analysis of the nuclear architecture. However, given the robustness of its results, 3D multicolor DNA FISH in combination with 3D-microscopy and image reconstruction is a possible method to validate C-technology based results and to unambiguously study the position and organization of specific loci at a single cell level. Here, we propose a step by step method of 3D multicolor DNA FISH suitable for a wide range of human primary cells and discuss all the practical actions, crucial steps, notions of 3D imaging and data analysis needed to obtained a successful and informative 3D multicolor DNA FISH within different biological contexts.
细胞生物学中的一个主要问题是核空间内的基因组组织以及染色质结构如何影响基因表达、细胞身份和分化等过程。为研究基因组三维结构而开发的许多方法可分为两类互补的方法:基于染色体构象捕获的技术(C技术)和成像技术。前者基于捕获固定细胞群体中的染色体构象和近端DNA相互作用,而后者基于对三维保存的细胞核进行DNA荧光原位杂交(FISH),能够在单细胞水平(多色)同时可视化多个基因座,检查它们在细胞核内的相互作用和分布(三维多色DNA FISH)。三维多色DNA FISH技术的局限性在于只能可视化少数预先确定的基因座,无法对核结构进行全面分析。然而,鉴于其结果的可靠性,三维多色DNA FISH与三维显微镜和图像重建相结合是一种验证基于C技术结果的可能方法,并且能够在单细胞水平上明确研究特定基因座的位置和组织。在此,我们提出一种适用于多种人类原代细胞的三维多色DNA FISH的逐步方法,并讨论在不同生物学背景下获得成功且信息丰富的三维多色DNA FISH所需的所有实际操作、关键步骤、三维成像概念和数据分析。