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聚甲基戊烯(一种透氧热塑性塑料)在长期芯片上细胞培养和芯片上器官装置中的应用。

Application of Polymethylpentene, an Oxygen Permeable Thermoplastic, for Long-Term on-a-Chip Cell Culture and Organ-on-a-Chip Devices.

作者信息

Sønstevold Linda, Czerkies Maciej, Escobedo-Cousin Enrique, Blonski Slawomir, Vereshchagina Elizaveta

机构信息

SINTEF Digital, Department of Smart Sensors and Microsystems, Gaustadalléen 23C, 0373 Oslo, Norway.

Institute of Fundamental Technological Research, Polish Academy of Sciences, Pawińskiego St. 5B, 02-106 Warsaw, Poland.

出版信息

Micromachines (Basel). 2023 Feb 24;14(3):532. doi: 10.3390/mi14030532.

Abstract

The applicability of a gas-permeable, thermoplastic material polymethylpentene (PMP) was investigated, experimentally and analytically, for organ-on-a-chip (OoC) and long-term on-a-chip cell cultivation applications. Using a sealed culture chamber device fitted with oxygen sensors, we tested and compared PMP to commonly used glass and polydimethylsiloxane (PDMS). We show that PMP and PDMS have comparable performance for oxygen supply during 4 days culture of epithelial (A549) cells with oxygen concentration stabilizing at 16%, compared with glass control where it decreases to 3%. For the first time, transmission light images of cells growing on PMP were obtained, demonstrating that the optical properties of PMP are suitable for non-fluorescent, live cell imaging. Following the combined transmission light imaging and calcein-AM staining, cell adherence, proliferation, morphology, and viability of A549 cells were shown to be similar on PMP and glass coated with poly-L-lysine. In contrast to PDMS, we demonstrate that a film of PMP as thin as 0.125 mm is compatible with high-resolution confocal microscopy due to its excellent optical properties and mechanical stiffness. PMP was also found to be fully compatible with device sterilization, cell fixation, cell permeabilization and fluorescent staining. We envision this material to extend the range of possible microfluidic applications beyond the current state-of-the-art, due to its beneficial physical properties and suitability for prototyping by different methods. The integrated device and measurement methodology demonstrated in this work are transferrable to other cell-based studies and life-sciences applications.

摘要

通过实验和分析,研究了一种透气热塑性材料聚甲基戊烯(PMP)在芯片器官(OoC)和芯片上长期细胞培养应用中的适用性。我们使用配备氧气传感器的密封培养室装置,对PMP与常用的玻璃和聚二甲基硅氧烷(PDMS)进行了测试和比较。我们发现,在上皮细胞(A549)4天的培养过程中,PMP和PDMS在氧气供应方面具有可比的性能,氧气浓度稳定在16%,而玻璃对照组的氧气浓度则降至3%。首次获得了在PMP上生长的细胞的透射光图像,表明PMP的光学特性适用于非荧光活细胞成像。在结合透射光成像和钙黄绿素-AM染色后,A549细胞在PMP和涂有聚-L-赖氨酸的玻璃上的细胞黏附、增殖、形态和活力相似。与PDMS不同,我们证明,由于其优异的光学特性和机械刚度,厚度仅为0.125毫米的PMP薄膜与高分辨率共聚焦显微镜兼容。还发现PMP与设备灭菌、细胞固定、细胞通透和荧光染色完全兼容。由于其有益的物理特性和适用于不同方法的原型制作,我们设想这种材料将扩展当前技术水平之外的微流体应用范围。这项工作中展示的集成设备和测量方法可转移到其他基于细胞的研究和生命科学应用中。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0153/10053898/11db20fd2cc4/micromachines-14-00532-g001.jpg

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