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用于三维球体纵向和终点表征的序列正交分析

Sequential orthogonal assays for longitudinal and endpoint characterization of three-dimensional spheroids.

作者信息

Blondeel Eva, Ernst Sam, De Vuyst Felix, Diósdi Ákos, Pinheiro Cláudio, Estêvão Diogo, Rappu Pekka, Boiy Robin, Dedeyne Sándor, Craciun Ligia, Goossens Vera, Dehairs Jonas, Cruz Tânia, Audenaert Dominique, Ceelen Wim, Linnebacher Michael, Boterberg Tom, Vandesompele Jo, Mestdagh Pieter, Swinnen Johan, Heino Jyrki, Horvath Peter, Oliveira Maria José, Hendrix An, De Metter Pieter, De Wever Olivier

机构信息

Laboratory of Experimental Cancer Research, Department of Human Structure and Repair, Ghent University, Ghent, Belgium.

Cancer Research Institute Ghent, Ghent, Belgium.

出版信息

Nat Protoc. 2025 Apr 8. doi: 10.1038/s41596-025-01150-y.

Abstract

Spheroids are reaggregated multicellular three-dimensional structures generated from cells or cell cultures of healthy as well as pathological tissue. Basic and translational spheroid application across academia and industry have led to the development of multiple setups and analysis methods, which mostly lack the modularity to maximally phenotype spheroids. Here we present the self-assembly of single-cell suspensions into spheroids by the liquid overlay method, followed by a modular framework for a multifaceted phenotyping of spheroids. Cell seeding, supernatant handling and compound administration are elaborated by both manual and automated procedures. The phenotyping modules contain a suite of orthogonal assays to analyze spheroids longitudinally and/or at an endpoint. Longitudinal analyses include morphometry with or without spheroid or cell state specific information and supernatant evaluation (nutrient consumption and metabolite/cytokine production). Spheroids can also be used as a starting point to monitor single and collective cell migration and invasion. At an endpoint, spheroids are lysed, fixed or dissociated into single cells. Endpoint analyses allow the investigation of molecular content, single-cell composition and state and architecture with spatial cell and subcellular specific information. Each module addresses time requirements and quality control indicators to support reproducibility. The presented complementary techniques can be readily adopted by researchers experienced in cell culture and basic molecular biology. We anticipate that this modular protocol will advance the application of three-dimensional biology by providing scalable and complementary methods.

摘要

球体是由健康及病理组织的细胞或细胞培养物重新聚集形成的多细胞三维结构。学术界和工业界对球体的基础研究和转化应用催生了多种设置和分析方法,但这些方法大多缺乏对球体进行最大程度表型分析的模块化特性。在此,我们展示了通过液体覆盖法将单细胞悬液自组装成球体的过程,随后介绍了一个用于对球体进行多方面表型分析的模块化框架。细胞接种、上清液处理和化合物给药通过手动和自动化程序进行了详细阐述。表型分析模块包含一系列正交分析方法,用于纵向和/或在终点对球体进行分析。纵向分析包括有或无球体或细胞状态特定信息的形态计量学以及上清液评估(营养物质消耗和代谢产物/细胞因子产生)。球体还可作为监测单个细胞和集体细胞迁移及侵袭的起点。在终点时,球体被裂解、固定或解离成单个细胞。终点分析允许对分子含量、单细胞组成和状态以及具有空间细胞和亚细胞特定信息的结构进行研究。每个模块都考虑了时间要求和质量控制指标以支持可重复性。经验丰富的细胞培养和基础分子生物学研究人员可以轻松采用本文介绍的互补技术。我们预计,这个模块化方案将通过提供可扩展的互补方法推动三维生物学的应用。

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