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Insert-based Microfluidics for 3D Cell Culture with Analysis

机译:基于插入物的3D细胞培养微流体分析

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摘要

We present an insert-based approach to fabricate scalable and multiplexable microfluidic devices for 3D cell culture and integration with downstream detection modules. Laser cut inserts with a layer of electrospun fibers are used as a scaffold for 3D cell culture, with the inserts being easily assembled in a 3D-printed fluidic device for flow-based studies. With this approach, the number and types of cells (on the inserts) in one fluidic device can be customized. Moreover, after an investigation (i.e., stimulation) under flowing conditions, the cell-laden inserts can be removed easily for subsequent studies including imaging and cell lysis. In this paper, we first discuss the fabrication of the device and characterization of the fibrous inserts. Two device designs containing two (channel width = 260 μm) and four inserts (channel width = 180 μm), respectively were used for different experiments in this study. Cell adhesion on the inserts with flowing media through the device was tested by culturing endothelial cells. Macrophages were cultured and stimulated under different conditions, the results of which indicate that the fibrous scaffolds under flow conditions result in dramatic effects on the amount and kinetics of TNF-α production (after LPS stimulation). Finally, we show that the cell module can be integrated with a downstream absorbance detection scheme. Overall, this technology represents a new and versatile way to culture cells in a more in vivo fashion for in vitro studies with on-line detection modules.
机译:我们提出了一种基于插入的方法来制造可扩展和可复用的微流体设备,用于3D细胞培养和与下游检测模块的集成。带有电纺纤维层的激光切割插入物用作3D细胞培养的支架,插入物可轻松组装在3D打印的流体设备中,用于基于流动的研究。通过这种方法,可以定制一个流体装置中(插入件上)细胞的数量和类型。此外,在流动条件下进行研究(即,刺激)之后,可以容易地移除载有细胞的插入物以用于随后的研究,包括成像和细胞裂解。在本文中,我们首先讨论该设备的制造和纤维插入物的表征。在这项研究中,分别使用两个包含两个(通道宽度= 260μm)和四个插入件(通道宽度= 180μm)的器件设计。通过培养内皮细胞来测试具有在通过装置的流动介质的情况下插入物上的细胞粘附。在不同条件下培养和刺激巨噬细胞,其结果表明在流动条件下的纤维支架对TNF-α产生的量和动力学(在LPS刺激后)产生显着影响。最后,我们表明该细胞模块可以与下游吸收率检测方案集成。总体而言,这项技术代表了一种新的通用方法,可以以更体内的方式培养细胞,以便通过在线检测模块进行体外研究。

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