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连续灌注微泡阵列用于 3D 肿瘤球体模型。

Continuously perfused microbubble array for 3D tumor spheroid model.

出版信息

Biomicrofluidics. 2011 Jun;5(2):24110. doi: 10.1063/1.3596530. Epub 2011 Jun 3.

Abstract

Multi-cellular tumor spheroids (MCTSs) have been established as a 3D physiologically relevant tumor model for drug testing in cancer research. However, it is difficult to control the MCTS testing parameters and the entire process is time-consuming and expensive. To overcome these limitations, we developed a simple microfluidic system using polydimethylsiloxane (PDMS) microbubbles to culture tumor spheroids under physiological flow. The flow characteristics such as streamline directions, shear stress profile, and velocity profile inside the microfluidic system were first examined computationally using a COMSOL simulation. Colo205 tumor spheroids were created by a modified hanging drop method and maintained inside PDMS microbubble cavities in perfusion culture. Cell viability inside the microbubbles was examined by live cell staining and confocal imaging. E-selectin mediated cell sorting of Colo205 and MDA-MB-231 cell lines on functionalized microbubble and PDMS surfaces was achieved. Finally, to validate this microfluidic system for drug screening purposes, the toxicity of the anti-cancer drug, doxorubicin, on Colo205 cells in spheroids was tested and compared to cells in 2D culture. Colo205 spheroids cultured in flow showed a threefold increase in resistance to doxorubicin compared to Colo205 monolayer cells cultured under static conditions, consistent with the resistance observed previously in other MCTS models. The advantages presented by our microfluidic system, such as the ability to control the size uniformity of the spheroids and to perform real-time imaging on cells in the growth platform, show potential for high throughput drug screening development.

摘要

多细胞肿瘤球(MCTS)已被确立为癌症研究中用于药物测试的 3D 生理相关肿瘤模型。然而,很难控制 MCTS 测试参数,整个过程既耗时又昂贵。为了克服这些限制,我们使用聚二甲基硅氧烷(PDMS)微泡开发了一种简单的微流控系统,在生理流动下培养肿瘤球。首先使用 COMSOL 模拟对微流控系统内部的流线方向、剪切应力分布和速度分布等流动特性进行了计算研究。通过改良的悬滴法生成 Colo205 肿瘤球,并在灌注培养中保存在 PDMS 微泡腔室内。通过活细胞染色和共聚焦成像检查微泡内的细胞活力。在功能化微泡和 PDMS 表面上实现了 E-选择素介导的 Colo205 和 MDA-MB-231 细胞系的分选。最后,为了验证该微流控系统用于药物筛选的目的,测试并比较了在球体中培养的 Colo205 细胞对阿霉素这种抗癌药物的毒性,与在 2D 培养中的细胞相比。与在静态条件下培养的 Colo205 单层细胞相比,在流动中培养的 Colo205 球体对阿霉素的耐药性增加了三倍,这与之前在其他 MCTS 模型中观察到的耐药性一致。我们的微流控系统具有的优势,例如能够控制球体的尺寸均匀性并对生长平台中的细胞进行实时成像,这为高通量药物筛选的发展提供了潜力。

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Biomechanical forces shape the tumor microenvironment.生物力学力塑造肿瘤微环境。
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