Department of Biomedical Engineering, University of Houston, Houston, Texas 77204, United States.
Wellman Center for Photomedicine, Massachusetts General Hospital, Department of Dermatology, Harvard Medical School, Boston, Massachusetts 02114, United States.
ACS Sens. 2021 Jun 25;6(6):2147-2157. doi: 10.1021/acssensors.0c02266. Epub 2021 May 20.
Three-dimensional (3D) cell culture based on polymer scaffold provides a promising tool to mimic a physiological microenvironment for drug testing; however, the next-generation cell activity monitoring technology for 3D cell culture is still challenging. Conventionally, drug efficacy evaluation and cell growth heavily rely on cell staining assays, using optical devices or flow cytometry. Here, we report a dual-function polymer scaffold (DFPS) composed of thermosensitive, silver flake- and gold nanoparticle-decorated polymers, enabling conductance change upon cell proliferation or death for cell activity monitoring and drug screening. The cell activity can be quantitatively monitored via measuring the conductance change induced by polymeric network swelling or shrinkage. This novel dual-function system (1) provides a 3D microenvironment to enable the formation and growth of tumor spheroid in vitro and streamlines the harvesting of tumor spheroids through the thermosensitive scaffold and (2) offers a simple and direct quantitative method to monitor 3D cell culture for drug responses. As a proof of concept, we demonstrated that a breast cancer stem cell line MDA-MB-436 was able to form cell spheroids in the scaffold, and the conductance change of the sensor exhibited a linear relationship with cell concentration. To examine its potential in drug screening, cancer spheroids in the cell sensor were treated with paclitaxel (PTX) and docetaxel (DTX), and predicted quantitative evaluation of the cytotoxic effect of drugs was established. Our results indicated that this cell sensing system may hold promising potential in expanding into an array device for high-throughput drug screening.
基于聚合物支架的三维(3D)细胞培养为药物测试模拟生理微环境提供了有前途的工具;然而,用于 3D 细胞培养的下一代细胞活性监测技术仍然具有挑战性。传统上,药物功效评估和细胞生长严重依赖细胞染色测定,使用光学设备或流式细胞术。在这里,我们报告了一种由热敏感聚合物、银薄片和金纳米粒子修饰的聚合物组成的双功能聚合物支架(DFPS),可在细胞增殖或死亡时发生电导变化,用于细胞活性监测和药物筛选。可以通过测量聚合物网络溶胀或收缩引起的电导变化来定量监测细胞活性。这种新型双功能系统(1)提供了一个 3D 微环境,使肿瘤球体能够在体外形成和生长,并通过热敏支架简化了肿瘤球体的收获;(2)提供了一种简单直接的定量方法来监测 3D 细胞培养对药物的反应。作为概念验证,我们证明了乳腺癌干细胞系 MDA-MB-436 能够在支架中形成细胞球体,并且传感器的电导变化与细胞浓度呈线性关系。为了检验其在药物筛选中的潜力,将细胞传感器中的癌细胞球体用紫杉醇(PTX)和多西紫杉醇(DTX)处理,并建立了对药物细胞毒性作用的定量预测评估。我们的结果表明,这种细胞传感系统可能具有扩展为高通量药物筛选的阵列装置的巨大潜力。