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使用微图案化芯片构建具有多种仿生特性的 3D 肿瘤模型,用于大规模化疗研究。

Facile construction of a 3D tumor model with multiple biomimetic characteristics using a micropatterned chip for large-scale chemotherapy investigation.

机构信息

Departments of Biomedical Engineering and Pathology, School of Basic Medical Science, Central South University, Changsha, Hunan 410013, China.

出版信息

Lab Chip. 2023 May 2;23(9):2161-2174. doi: 10.1039/d3lc00009e.

Abstract

The establishment and application of biomimetic preclinical tumor models for generalizable and high-throughput antitumor screening play a promising role in drug discovery and cancer therapeutics. Herein, a facile and robust microengineering-assisted methodology for highly biomimetic three-dimensional (3D) tumor construction for dynamic and large-scale antitumor investigation is developed using micropatterned array chips. The high fidelity, simplicity, and stability of chip fabrication are guaranteed by improved polydimethylsiloxane (PDMS) microcontact printing. The employment of a PDMS-micropatterned chip permits microscale, simple, biocompatible, and reproducible cell localization with quantity uniformity and 3D tumor array formation with geometric homogeneity. Array-like 3D tumor models possessing complex multilayer cell arrangements, diverse phenotypic gradients, and biochemical gradients were prepared based on the use of easy-to-operate chips. The applicability of the established biomimetic models in temporal and massive investigations of tumor responses to antitumor chemotherapy is also verified experimentally. The results support the importance of the dimensional geometry and biomimetic degree of 3D tumors when conducting antitumor screening to explore drug susceptibility and resistance. This work provides a facile and reliable strategy to perform highly biomimetic tumor manipulation and analysis, which holds great potential for applications in oncology, pharmacology, precision medicine, and tissue microengineering.

摘要

用于可推广和高通量抗肿瘤筛选的仿生临床前肿瘤模型的建立和应用在药物发现和癌症治疗中具有广阔的前景。在此,通过微图案化阵列芯片开发了一种用于动态和大规模抗肿瘤研究的高度仿生三维(3D)肿瘤构建的简便而稳健的微工程辅助方法。通过改进的聚二甲基硅氧烷(PDMS)微接触印刷来保证芯片制造的高保真度、简单性和稳定性。PDMS 微图案化芯片的使用允许进行微尺度、简单、生物相容且可重复的细胞定位,具有数量均匀性和具有几何均匀性的 3D 肿瘤阵列形成。基于易于操作的芯片,可以制备具有复杂多层细胞排列、多种表型梯度和生化梯度的类阵列 3D 肿瘤模型。实验验证了所建立的仿生模型在抗肿瘤化疗中对肿瘤反应的时间和大规模研究中的适用性。结果支持在进行抗肿瘤筛选以探索药物敏感性和耐药性时,3D 肿瘤的维度几何形状和仿生程度的重要性。这项工作提供了一种简便可靠的策略来进行高度仿生的肿瘤操作和分析,在肿瘤学、药理学、精准医学和组织微工程中有很大的应用潜力。

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