Biomedical Engineering Department, Saint Louis University.
Biomedical Engineering Department, Saint Louis University;
J Vis Exp. 2023 Sep 22(199). doi: 10.3791/65515.
Three-dimensional (3D) encapsulation of spheroids is crucial to adequately replicate the tumor microenvironment for optimal cell growth. Here, we designed an in vitro 3D glioblastoma model for spheroid encapsulation to mimic the tumor extracellular microenvironment. First, we formed square pyramidal microwell molds using polydimethylsiloxane. These microwell molds were then used to fabricate tumor spheroids with tightly controlled sizes from 50-500 μm. Once spheroids were formed, they were harvested and encapsulated in polyethylene glycol (PEG)-based hydrogels. PEG hydrogels are a versatile platform for spheroid encapsulation, as hydrogel properties such as stiffness, degradability, and cell adhesiveness can be tuned independently. Here, we used a representative soft (~8 kPa) hydrogel to encapsulate glioblastoma spheroids. Finally, a method to stain and image spheroids was developed to obtain high-quality images via confocal microscopy. Due to the dense spheroid core and relatively sparse periphery, imaging can be difficult, but using a clearing solution and confocal optical sectioning helps alleviate these imaging difficulties. In summary, we show a method to fabricate uniform spheroids, encapsulate them in PEG hydrogels and perform confocal microscopy on the encapsulated spheroids to study spheroid growth and various cell-matrix interactions.
三维(3D)封装球体对于充分复制肿瘤微环境以实现最佳细胞生长至关重要。在这里,我们设计了一种用于球体封装的体外 3D 脑胶质瘤模型,以模拟肿瘤细胞外微环境。首先,我们使用聚二甲基硅氧烷(PDMS)形成方锥形微井模具。然后,使用这些微井模具从 50-500μm 制造出具有严格控制尺寸的肿瘤球体。一旦形成球体,就将其收获并封装在聚乙二醇(PEG)基水凝胶中。PEG 水凝胶是球体封装的多功能平台,因为水凝胶的特性(如硬度、可降解性和细胞粘附性)可以独立调节。在这里,我们使用了一种代表性的软(~8kPa)水凝胶来封装脑胶质瘤球体。最后,开发了一种用于对球体进行染色和成像的方法,通过共聚焦显微镜获得高质量的图像。由于球体核心致密而外围相对稀疏,因此成像可能会比较困难,但使用透明溶液和共聚焦光学切片有助于缓解这些成像困难。总之,我们展示了一种制造均匀球体的方法,将其封装在 PEG 水凝胶中,并对封装的球体进行共聚焦显微镜检查,以研究球体生长和各种细胞-基质相互作用。