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利用分层区块氧控芯片(BLOCCs)在 3D 细胞培养物中生成线性氧梯度。

Generating linear oxygen gradients across 3D cell cultures with block-layered oxygen controlled chips (BLOCCs).

机构信息

Department of Chemistry, University of North Carolina at Chapel Hill, Kenan and Caudill Laboratories, 125 South Road, Chapel Hill, NC, 27599-3290, USA.

Lineberger Comprehensive Cancer Center, University of North Carolina at Chapel Hill, 450 West Drive, Chapel Hill, NC 27599-7295, USA.

出版信息

Anal Methods. 2020 Jan 7;12(1):18-24. doi: 10.1039/C9AY01690B. Epub 2019 Nov 26.

Abstract

Oxygen is a transcriptional regulator responsible for tissue homeostasis and maintenance. Studies relating cellular phenotype with oxygen tension often use hypoxia chambers, which expose cells to a single, static oxygen tension. Despite their ease of use, these chambers are unable to replicate the oxygen gradients found in healthy and diseased tissues. Microfabricated devices capable of imposing an oxygen gradient across tissue-like structures are a promising tool for these studies, as they can provide a high density of information in a single experimental setup. We describe the fabrication and characterization of a modular device, which leverages the gas-permeability of silicone to impose gradients of oxygen across cell-containing regions, assembled by layering sheets of laser cut acrylic and silicone rubber. The silicone also acts as a barrier, separating the flowing gases from the cell culture medium, preventing evaporation or bubble formation in experiments that require prolonged periods of incubation. The acrylic components provide a rigid framework to provide a sterile culture environment. Using oxygen-sensing films, we show the device can support gradients of different ranges and steepness by simply changing the composition of the gases flowing through the silicone components of the BLOCC. Using a cell-based reporter assay, we demonstrate that cellular responses to hypoxia are proportional to oxygen tension.

摘要

氧气是一种转录调节因子,负责组织的动态平衡和维持。将细胞表型与氧张力相关联的研究通常使用缺氧室,该装置将细胞暴露于单一的静态氧张力下。尽管这些设备易于使用,但它们无法复制健康和患病组织中存在的氧气梯度。能够在类似组织的结构上施加氧气梯度的微制造设备是这些研究的有前途的工具,因为它们可以在单个实验设置中提供高密度的信息。我们描述了一种模块化设备的制造和特性,该设备利用硅酮的透气性在包含细胞的区域上施加氧气梯度,通过将激光切割的丙烯酸和硅橡胶片分层组装而成。硅酮还可以作为屏障,将流动气体与细胞培养液隔开,防止在需要长时间孵育的实验中蒸发或形成气泡。丙烯酸组件提供刚性框架,以提供无菌的培养环境。使用氧感应膜,我们表明该设备可以通过简单地改变流过硅酮组件的气体组成来支持不同范围和陡度的梯度。使用基于细胞的报告基因测定法,我们证明细胞对缺氧的反应与氧张力成正比。

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