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Bi-layer blood vessel mimicking microfluidic platform for antitumor drug screening based on co-culturing 3D tumor spheroids and endothelial layers

机译:基于共培养3D肿瘤球状体和内皮层模拟抗肿瘤药物筛查的双层血管模拟微流体平台

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摘要

Two-dimensional (2D) cell culture is not ideal for traditional drug screening, because 2D culture does not accurately mimic the physiological microenvironment of tumor cells. Thus, a drug-screening system which more closely mimics the microenvironment of in vivo tumors is necessary. Here, we present a biomimicking bilayer microfluidic device that can facilitate antitumor drug screening. The microfluidic device consists of two polydimethylsiloxane (PDMS) pieces with channels which are separated by a semipermeable membrane to allow water, oxygen, and nutrition supply, while preventing cell migration. The channels embedded on the two PDMS pieces overlap each other over a long distance to ensure a larger exchange area to mimic the blood vessel-tumor model. High concentrations of endothelial cells (EC) are first seeded onto the membrane through the apical channel, and after a two-day culture, a confluent EC monolayer forms. Tumor spheroid-laden Matrigel is then seeded into the basal channel. After the Matrigel is cured, the device is ready for drug testing. Paclitaxel is used as the model drug for testing. Confocal microscopy and ImageJ are used to assess the efficacy of different concentrations of paclitaxel, and optical coherence tomography (OCT) is employed to determine the tumor volumetric change after the drug treatment. The results indicate that the proposed bilayer microfluidic device in combination with confocal and OCT optical characterization provide an efficient platform for antitumor drug testing.
机译:二维(2D)细胞培养对于传统药物筛查不理想,因为2D培养不能准确地模仿肿瘤细胞的生理微环境。因此,需要一种更密切地模仿体内肿瘤的微环境的药物筛选系统。在这里,我们提出了一种生物剥削双层微流体装置,其可以促进抗肿瘤药物筛选。微流体装置包括两个聚二甲基硅氧烷(PDMS)片与由半透膜隔开,以允许水,氧气和营养供应,同时防止细胞迁移的通道。在长距离嵌入两个PDMS片彼此重叠的信道,以确保较大的交换区,以模拟血管的肿瘤模型。首先通过顶端通道将高浓度的内皮细胞(EC)播种到膜上,并在为期两天的培养物之后,融合EC单层形式。然后将肿瘤锭剂升致基质胶接种到基底通道中。在Matrigel固化后,该装置已准备好进行药物测试。紫杉醇用作测试模型药物。共聚焦显微镜和ImageJ用于评估不同浓度的紫杉醇的功效,并且使用光学相干断层扫描(OCT)来确定药物治疗后的肿瘤体积变化。结果表明,所提出的双层微流体装置与共聚焦和OCT光学表征组合提供了一种有效的抗肿瘤药物测试平台。

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