Department of Pharmaceutical Analysis, Higher Educational Key Laboratory for Nano Biomedical Technology of Fujian Province, Faculty of Pharmacy, Fujian Medical University, Fuzhou, 350122, China.
Department of Pharmaceutical Analysis, Higher Educational Key Laboratory for Nano Biomedical Technology of Fujian Province, Faculty of Pharmacy, Fujian Medical University, Fuzhou, 350122, China.
Anal Chim Acta. 2022 Feb 15;1194:339409. doi: 10.1016/j.aca.2021.339409. Epub 2021 Dec 29.
Three-dimensional (3D) cell culture system, as an alternative approach for traditional cell culture, attracts great attention because of physiological relevance and great microenvironment similarity to human conditions. Herein, a facile paper-polylactic (PLA) platform that was fabricated by wax printing and 3D printing, coupled with electrochemical sensor, was designed for the construction and intervention of 3D cell damage model. Pheochromocytoma cells (PC12) and bone marrow mesenchymal stem cells (BMSCs) were seeded on the paper-PLA 3D platforms and displayed the features of uniform distribution, good adhesion and perfect proliferation, as well as decreased circularity when compared to those grown on the two-dimensional (2D) interfaces. The electrochemical sensors revealed cell viability by monitoring dopamine released by cell models, ascertaining the applicability of the paper-PLA platform to a long-term 3D cell culture and drug assessment. Additionally, the results revealed that donepezil and BMSCs-secreted active molecules exhibited stronger cytoprotective effect against amyloid-beta oligomers-induced cell damage on the paper-PLA 3D printed platforms, indicating the cell damage model and the cell intervention model were achieved successfully in the simulated in vivo physiological microenvironment. Thus, the proposed paper-PLA platform may serve as a promising candidate for efficient drug screening and toxicity evaluation due to its simple structure, low cost, and convenient integration of 3D cell culture and activity evaluation.
三维(3D)细胞培养系统作为传统细胞培养的替代方法,由于其与生理相关的高度相似性和对人类条件的巨大微环境相似性而受到极大关注。本文设计了一种通过蜡印和 3D 打印制造的简便纸-聚乳酸(PLA)平台,并结合电化学传感器,用于构建和干预 3D 细胞损伤模型。将嗜铬细胞瘤细胞(PC12)和骨髓间充质干细胞(BMSCs)接种在纸-PLA 3D 平台上,与二维(2D)界面上生长的细胞相比,表现出均匀分布、良好粘附和完美增殖的特征,同时细胞的圆度降低。电化学传感器通过监测细胞模型释放的多巴胺来评估细胞活力,证实了纸-PLA 平台适用于长期 3D 细胞培养和药物评估。此外,结果表明,多奈哌齐和 BMSCs 分泌的活性分子对淀粉样β寡聚物诱导的细胞损伤表现出更强的细胞保护作用,表明在模拟体内生理微环境中成功建立了细胞损伤模型和细胞干预模型。因此,由于其结构简单、成本低、方便地整合 3D 细胞培养和活性评估,所提出的纸-PLA 平台可能成为高效药物筛选和毒性评估的有前途的候选者。