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高通量悬浮贴壁 3D 细胞培养物的三维成像流式细胞术。

High-Throughput 3D Imaging Flow Cytometry of Suspended Adherent 3D Cell Cultures.

机构信息

Research Center for Advanced Science and Technology, The University of Tokyo, 4-6-1 Komaba, Meguro-ku, Tokyo, 153-8904, Japan.

出版信息

Small Methods. 2024 Aug;8(8):e2301318. doi: 10.1002/smtd.202301318. Epub 2023 Dec 22.

Abstract

3D cell cultures are indispensable in recapitulating in vivo environments. Among the many 3D culture methods, culturing adherent cells on hydrogel beads to form spheroid-like structures is a powerful strategy for maintaining high cell viability and functions in the adherent states. However, high-throughput, scalable technologies for 3D imaging of individual cells cultured on the hydrogel scaffolds are lacking. This study reports the development of a high throughput, scalable 3D imaging flow cytometry platform for analyzing spheroid models. This platform is realized by integrating a single objective fluorescence light-sheet microscopy with a microfluidic device that combines hydrodynamic and acoustofluidic focusing techniques. This integration enabled unprecedentedly high-throughput and scalable optofluidic 3D imaging, processing 1310 spheroids consisting of 28 117 cells min. The large dataset obtained enables precise quantification and comparison of the nuclear morphology of adhering and suspended cells, revealing that the adhering cells have smaller nuclei with less rounded surfaces. This platform's high throughput, robustness, and precision for analyzing the morphology of subcellular structures in 3D culture models hold promising potential for various biomedical analyses, including image-based phenotypic screening of drugs with spheroids or organoids.

摘要

3D 细胞培养对于再现体内环境是不可或缺的。在众多 3D 培养方法中,将贴壁细胞培养在水凝胶珠上形成类似球体的结构是一种在贴壁状态下保持高细胞活力和功能的强大策略。然而,用于在水凝胶支架上培养的单个细胞的高通量、可扩展的 3D 成像技术仍然缺乏。本研究报告了一种高通量、可扩展的用于分析球体模型的 3D 成像流式细胞术平台的开发。该平台通过将单物镜荧光光片显微镜与微流控装置集成来实现,该微流控装置结合了流体动力学和声流聚焦技术。这种集成实现了前所未有的高通量和可扩展的光流 3D 成像,每分钟可处理 1310 个由 28117 个细胞组成的球体。获得的大型数据集可实现对贴壁和悬浮细胞的核形态进行精确的定量和比较,结果表明贴壁细胞的核更小,表面更不圆。该平台在分析 3D 培养模型中亚细胞结构形态方面具有高通量、稳健性和精确性,为各种生物医学分析(包括基于图像的球体或类器官的药物表型筛选)提供了有前途的应用潜力。

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