Structural and Computational Biology Unit, European Molecular Biology Laboratory, Meyerhofstrasse 1, 69117 Heidelberg, Germany.
Cell Biology and Biophysics Unit, European Molecular Biology Laboratory, Meyerhofstrasse 1, 69117 Heidelberg, Germany.
Dev Cell. 2023 Apr 10;58(7):616-632.e6. doi: 10.1016/j.devcel.2023.03.001. Epub 2023 Mar 28.
3D cell cultures, in particular organoids, are emerging models in the investigation of healthy or diseased tissues. Understanding the complex cellular sociology in organoids requires integration of imaging modalities across spatial and temporal scales. We present a multi-scale imaging approach that traverses millimeter-scale live-cell light microscopy to nanometer-scale volume electron microscopy by performing 3D cell cultures in a single carrier that is amenable to all imaging steps. This allows for following organoids' growth, probing their morphology with fluorescent markers, identifying areas of interest, and analyzing their 3D ultrastructure. We demonstrate this workflow on mouse and human 3D cultures and use automated image segmentation to annotate and quantitatively analyze subcellular structures in patient-derived colorectal cancer organoids. Our analyses identify local organization of diffraction-limited cell junctions in compact and polarized epithelia. The continuum-resolution imaging pipeline is thus suited to fostering basic and translational organoid research by simultaneously exploiting the advantages of light and electron microscopy.
3D 细胞培养物,特别是类器官,是研究健康或患病组织的新兴模型。要了解类器官中复杂的细胞社会学,需要在时空尺度上整合多种成像模式。我们提出了一种多尺度成像方法,通过在单个载体中进行 3D 细胞培养,从毫米级的活细胞明场显微镜跨越到纳米级的体积电子显微镜,从而实现了从毫米到纳米的跨越。这使得能够跟踪类器官的生长,用荧光标记物探测其形态,识别感兴趣的区域,并分析其 3D 超微结构。我们在小鼠和人类 3D 培养物上演示了这个工作流程,并使用自动图像分割来注释和定量分析源自患者的结直肠癌细胞类器官中的亚细胞结构。我们的分析确定了在紧凑和极化上皮中,具有衍射极限的细胞连接的局部组织。因此,连续分辨率成像流水线非常适合通过同时利用明场和电子显微镜的优势来促进基础和转化类器官研究。