Rauti Rossana, Ess Adi, Roi Baptiste Le, Kreinin Yevgeniy, Epshtein Mark, Korin Netanel, Maoz Ben M
Department of Biomedical Engineering, Tel Aviv University, Tel Aviv 6997801, Israel.
Sagol School of Neuroscience, Tel Aviv University, Tel Aviv 6997801, Israel.
APL Bioeng. 2021 Apr 28;5(2):026103. doi: 10.1063/5.0039366. eCollection 2021 Jun.
Organ-on-a-Chip platforms provide rich opportunities to observe interactions between different cell types under -like conditions, i.e., in the presence of flow. Yet, the costs and know-how required for the fabrication and implementation of these platforms restrict their accessibility. This study introduces and demonstrates a novel Insert-Chip: a microfluidic device that provides the functionality of an Organ-on-a-Chip platform, namely, the capacity to co-culture cells, expose them to flow, and observe their interactions-yet can easily be integrated into standard culture systems (e.g., well plates or multi-electrode arrays). The device is produced using stereolithograpy 3D printing and is user-friendly and reusable. Moreover, its design features overcome some of the measurement and imaging challenges characterizing standard Organ-on-a-Chip platforms. We have co-cultured endothelial and epithelial cells under flow conditions to demonstrate the functionality of the device. Overall, this novel microfluidic device is a promising platform for the investigation of biological functions, cell-cell interactions, and response to therapeutics.
芯片器官平台为在类似条件下,即在有流动的情况下观察不同细胞类型之间的相互作用提供了丰富的机会。然而,制造和实施这些平台所需的成本和专业知识限制了它们的可及性。本研究介绍并展示了一种新型插入式芯片:一种微流控装置,它具备芯片器官平台的功能,即能够共培养细胞、使其暴露于流动环境并观察它们的相互作用,而且可以轻松集成到标准培养系统(如孔板或多电极阵列)中。该装置采用立体光刻3D打印制造,用户友好且可重复使用。此外,其设计特点克服了标准芯片器官平台所具有的一些测量和成像挑战。我们在流动条件下共培养了内皮细胞和上皮细胞,以证明该装置的功能。总体而言,这种新型微流控装置是用于研究生物学功能、细胞间相互作用以及对治疗反应的一个有前景的平台。