1 Laboratory of Biosensors and Bioelectronics, University and ETH Zurich, Zurich, Switzerland.
2 State Key Laboratory of Bioelectronics, School of Biological Science and Medical Engineering, Southeast University, Nanjing, China.
SLAS Discov. 2017 Jun;22(5):635-644. doi: 10.1177/2472555217693191. Epub 2017 Mar 9.
Three-dimensional (3D) cell culture models are gaining increasing interest for use in drug development pipelines due to their closer resemblance to human tissues. Hydrogels are the first-choice class of materials to recreate in vitro the 3D extra-cellular matrix (ECM) environment, important in studying cell-ECM interactions and 3D cellular organization and leading to physiologically relevant in vitro tissue models. Here we propose a novel hydrogel platform consisting of a 96-well plate containing pre-cast synthetic PEG-based hydrogels for the simple establishment of 3D (co-)culture systems without the need for the standard encapsulation method. The in-depth density gradient at the surface of the hydrogel promotes the infiltration of cells deposited on top of it. The ability to decouple hydrogel production and cell seeding is intended to simplify the use of hydrogel-based platforms and thus increase their accessibility. Using this platform, we established 3D cultures relevant for studying stem cell differentiation, angiogenesis, and neural and cancer models.
三维(3D)细胞培养模型由于更接近人体组织,因此在药物开发管道中越来越受到关注。水凝胶是重建体外 3D 细胞外基质(ECM)环境的首选材料,这对于研究细胞-ECM 相互作用以及 3D 细胞组织和生成生理相关的体外组织模型非常重要。在这里,我们提出了一种新的水凝胶平台,该平台由 96 孔板组成,其中包含预制的合成 PEG 基水凝胶,用于简单建立 3D(共)培养系统,而无需使用标准的封装方法。水凝胶表面的深入密度梯度促进了沉积在其顶部的细胞的渗透。水凝胶生产和细胞接种的解耦能力旨在简化水凝胶平台的使用,从而提高其可及性。使用该平台,我们建立了与研究干细胞分化、血管生成以及神经和癌症模型相关的 3D 培养物。