胶质母细胞瘤
缺氧(环境)
癌症研究
球体
肿瘤微环境
化学
细胞
细胞生长
药品
明胶
细胞生物学
细胞外
3D生物打印
肿瘤进展
细胞培养
生物物理学
紫杉醇
药物输送
动物模型
细胞存活
细胞外基质
细胞迁移
胶质瘤
细胞生理学
作者
Emmie Yao,Grace Yi Lu,Raghavendra Vadla,Yi Xiang,Tingyu Lu,Yazhi Sun,Emma Lauren Berman,Nancy Zhang,F. Furnari,Shaochen Chen
摘要
Glioblastoma (GBM) is the most common and malignant brain tumor, characterized by its highly aggressive and rapidly proliferative behavior. In this study, we developed a high throughput GBM model with a cell density modulated hypoxic niche to investigate the important role of hypoxia in shaping GBM progression and therapeutic response. Harnessing the precise control over materials using digital light processing (DLP) bioprinting, we fabricated GBM constructs with tunable cell densities in gelatin methacrylate (GelMA), a photopolymerizable hydrogel that mimics the extracellular matrix. High cell density (HCD) constructs gave rise to a hypoxic microenvironment, allowing us to study natural hypoxia-driven adaptations, including ROS signaling, migration patterns, and altered metabolic pathways. The major hypoxia pathway, hypoxia inducible factor (HIF-1α), was significantly enriched by 15-fold in the HCD condition compared to its base condition. Following this, we explored cellular response to drug treatment using standard-of-care GBM therapies to validate the hypoxic niche. These data show HCD model provides a more robust and Temozolomide-resistant environment compared to spheroids and low density conditions. Our findings demonstrate that DLP bioprinting provides a precise and reproducible platform for modeling GBM physiology and highlight its potential for high throughput drug screening in vitro.
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