细胞外基质
嵌合抗原受体
肿瘤微环境
基质凝胶
癌症研究
3D生物打印
细胞
医学
材料科学
组织工程
生物医学工程
化学
细胞生物学
肿瘤细胞
免疫学
T细胞
生物
血管生成
生物化学
免疫系统
作者
Min Tang,Yunjia Qu,Peixiang He,Emmie Yao,Tianze Guo,Di Yu,Nancy Zhang,Wisarut Kiratitanaporn,Yazhi Sun,Longwei Liu,Yingxiao Wang,Shaochen Chen
标识
DOI:10.1016/j.mtbio.2024.101077
摘要
Glioblastoma (GBM) presents a significant therapeutic challenge due to the limited efficacy of existing treatments. Chimeric antigen receptor (CAR) T-cell therapy offers promise, but its potential in solid tumors like GBM is undermined by the physical barrier posed by the extracellular matrix (ECM). To address the inadequacies of traditional 2D cell culture, animal models, and Matrigel-based 3D culture in mimicking the mechanical characteristics of tumor tissues, we employed biomaterials and digital light processing-based 3D bioprinting to fabricate biomimetic tumor models with finely tunable ECM stiffness independent of ECM composition. Our results demonstrated that increased material stiffness markedly impeded CAR-T cell penetration and tumor cell cytotoxicity in GBM models. The 3D bioprinted models enabled us to examine the influence of ECM stiffness on CAR-T cell therapy effectiveness, providing a clinically pertinent evaluation tool for CAR-T cell development in stiff solid tumors. Furthermore, we developed an innovative heat-inducible CAR-T cell therapy, effectively overcoming the challenges posed by the stiff tumor microenvironment.
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