Maritan Sarah M, Lian Eric Y, Mulligan Lois M
Division of Cancer Biology and Genetics, Queen's University Cancer Research Institute; Department of Pathology and Molecular Medicine, Queen's University.
Division of Cancer Biology and Genetics, Queen's University Cancer Research Institute; Department of Pathology and Molecular Medicine, Queen's University;
J Vis Exp. 2017 Mar 27(121):55544. doi: 10.3791/55544.
Monolayer cell culture does not adequately model the in vivo behavior of tissues, which involves complex cell-cell and cell-matrix interactions. Three-dimensional (3D) cell culture techniques are a recent innovation developed to address the shortcomings of adherent cell culture. While several techniques for generating tissue analogues in vitro have been developed, these methods are frequently complex, expensive to establish, require specialized equipment, and are generally limited by compatibility with only certain cell types. Here, we describe a rapid and flexible protocol for aggregating cells into multicellular 3D spheroids of consistent size that is compatible with growth of a variety of tumor and normal cell lines. We utilize varying concentrations of serum and methyl cellulose (MC) to promote anchorage-independent spheroid generation and prevent the formation of cell monolayers in a highly reproducible manner. Optimal conditions for individual cell lines can be achieved by adjusting MC or serum concentrations in the spheroid formation medium. The 3D spheroids generated can be collected for use in a wide range of applications, including cell signaling or gene expression studies, candidate drug screening, or in the study of cellular processes such as tumor cell invasion and migration. The protocol is also readily adapted to generate clonal spheroids from single cells, and can be adapted to assess anchorage-independent growth and anoikis-resistance. Overall, our protocol provides an easily modifiable method for generating and utilizing 3D cell spheroids in order to recapitulate the 3D microenvironment of tissues and model the in vivo growth of normal and tumor cells.
单层细胞培养不能充分模拟组织的体内行为,因为组织涉及复杂的细胞间和细胞与基质的相互作用。三维(3D)细胞培养技术是为解决贴壁细胞培养的缺点而开发的一项最新创新技术。虽然已经开发了几种在体外生成组织类似物的技术,但这些方法通常很复杂,建立成本高,需要专门的设备,并且通常仅受限于与某些特定细胞类型的兼容性。在此,我们描述了一种快速且灵活的方案,用于将细胞聚集成大小一致的多细胞3D球体,该方案与多种肿瘤和正常细胞系的生长兼容。我们利用不同浓度的血清和甲基纤维素(MC)以高度可重复的方式促进不依赖贴壁的球体生成并防止细胞单层的形成。通过调整球体形成培养基中的MC或血清浓度,可以实现各个细胞系的最佳条件。所生成的3D球体可收集用于广泛的应用,包括细胞信号传导或基因表达研究、候选药物筛选,或用于研究诸如肿瘤细胞侵袭和迁移等细胞过程。该方案也很容易适用于从单细胞生成克隆球体,并且可以用于评估不依赖贴壁的生长和抗失巢凋亡能力。总体而言,我们的方案提供了一种易于修改的方法来生成和利用3D细胞球体,以便重现组织的3D微环境并模拟正常和肿瘤细胞的体内生长。