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Rapid Fabrication of Microfluidic Devices for Biological Mimicking: A Survey of Materials and Biocompatibility

机译:用于生物模拟的微流体装置的快速制造:材料和生物相容性调查

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摘要

Microfluidics is an essential technique used in the development of in vitro models for mimicking complex biological systems. The microchip with microfluidic flows offers the precise control of the microenvironment where the cells can grow and structure inside channels to resemble in vivo conditions allowing a proper cellular response investigation. Hence, this study aimed to develop low-cost, simple microchips to simulate the shear stress effect on the human umbilical vein endothelial cells (HUVEC). Differentially from other biological microfluidic devices described in the literature, we used readily available tools like heat-lamination, toner printer, laser cutter and biocompatible double-sided adhesive tapes to bind different layers of materials together, forming a designed composite with a microchannel. In addition, we screened alternative substrates, including polyester-toner, polyester-vinyl, glass, Permanox® and polystyrene to compose the microchips for optimizing cell adhesion, then enabling these microdevices when coupled to a syringe pump, the cells can withstand the fluid shear stress range from 1 to 4 dyne cm2. The cell viability was monitored by acridine orange/ethidium bromide (AO/EB) staining to detect live and dead cells. As a result, our fabrication processes were cost-effective and straightforward. The materials investigated in the assembling of the microchips exhibited good cell viability and biocompatibility, providing a dynamic microenvironment for cell proliferation. Therefore, we suggest that these microchips could be available everywhere, allowing in vitro assays for daily laboratory experiments and further developing the organ-on-a-chip concept.
机译:微流体是一种用于开发用于模拟复杂生物系统的体外模型的基本技术。具有微流体流的微芯片提供了微环境的精确控制,其中细胞可以生长和结构内部通道,以类似于体内条件,允许适当的细胞响应调查。因此,本研究旨在开发低成本,简单的微芯片,以模拟人脐静脉内皮细胞(HUVEC)的剪切应力影响。与文献中描述的其他生物微流体装置差异,我们使用了易于使用的工具,如热层压,调色剂打印机,激光切割器和生物相容的双面胶带,以将不同的材料层粘合在一起,形成具有微通道的设计复合材料。此外,我们筛选了替代衬底,包括聚酯 - 调色剂,聚酯 - 乙烯基,玻璃,PLEATOX®和聚苯乙烯,以组成微档以优化电池粘附,然后在连接到注射器泵时使这些微生物能够承受流体剪切应力范围为1至4达因CM2。通过吖啶橙/溴化乙锭(AO / EB)染色以检测活细胞和死细胞的细胞活力。结果,我们的制造过程具有成本效益和简单。在微芯片组装中研究的材料表现出良好的细胞活力和生物相容性,为细胞增殖提供动态微环境。因此,我们建议这些微芯片可以随处可用,从而允许日常实验室实验的体外测定,并进一步开发芯片概念。

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