| Literature DB >> 29270434 |
Dong Woo Lee1, Sang-Yun Lee2, Il Doh3, Gyu Ha Ryu4, Do-Hyun Nam2,5.
Abstract
Glioblastoma multiforme (GBM) is recognized as the most common and lethal form of central nervous system cancer. To cure GBM patients, many target-specific chemotherapeutic agents have been developing. However, 2D monolayer cell-based toxicity and efficacy tests did not efficiently screen agents due to the pool reflection of in vivo microenvironments (cell-to-cell and cell-to-extracellular matrix interaction). In this study, we used a 3D cell-based, high-throughput screening method reflecting the microenvironments using a micropillar and microwell chip platform to draw a high-dose heat map of the cytotoxicity and efficacy of 70 compounds, with two DMSO controls. Moreover, the high-dose heat map model compared the responses of four 3D-cultured patient-derived GBM cells and astrocytes to high dosages of compounds with respect to efficacy and cytotoxicity, respectively, to discern the most efficacious drug for GBM. Among the 70 compounds tested, cediranib (a potent inhibitor of vascular endothelial growth factor (VEGF) receptor tyrosine kinases) exhibited the lowest cytotoxicity to astrocytes and high efficacy to GBM cells in a high-dose heat map model.Entities:
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Year: 2017 PMID: 29270434 PMCID: PMC5705865 DOI: 10.1155/2017/7218707
Source DB: PubMed Journal: Biomed Res Int Impact factor: 3.411
Figure 13D cell-based high-throughput screening chips. (a) Photo and schematic view of micropillar and microwell chip platform. Green dots are 3D-cultured astrocytes and glioblastoma multiforme (GBM) cells in alginate spot on the micropillar. (b) Schematic view of the experimental procedure. Cells are dispensed and immobilized in alginate onto the top of the micropillars and dipped in the microwells containing growth media for 1-day culture by sandwiching the micropillar and microwell chips. Compounds are dispensed into the microwells and cells are exposed to the compounds by moving the micropillar chip to a new microwell chip. 3D-cultured cells are stained with Calcein AM, and the dried alginate spot on the micropillar chip is scanned for data analysis.
Figure 2Chip layout for high-dose 72 (including 2 DMSO controls)-compound heat map. Each compound has seven replicates.
Figure 3High-dose compound heat map for selecting low cytotoxicity and high efficacy compound.
Figure 4Relative cell viability of astrocytes after exposure to 70 compounds after the 3- and 7-day compound treatment. Cell viabilities are calculated from 3D cell size.
Figure 5High-dose compound heat map. Astrocytes and four patient-derived glioblastoma multiforme (GBM) cells were treated with 70 compounds for 3 days. In the high-dose heat map (table over graph), red solid filling denotes astrocytes with viability >90% and blue solid filling denotes GBM cells with viability <50%.