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Fabrication and Bonding of Refractive Index Matched Microfluidics for Precise Measurements of Cell Mass

机译:折射率匹配的微流体的制造和粘合精确测量细胞质量

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摘要

The optical properties of polymer materials used for microfluidic device fabrication can impact device performance when used for optical measurements. In particular, conventional polymer materials used for microfluidic devices have a large difference in refractive index relative to aqueous media generally used for biomedical applications. This can create artifacts when used for microscopy-based assays. Fluorination can reduce polymer refractive index, but at the cost of reduced adhesion, creating issues with device bonding. Here, we present a novel fabrication technique for bonding microfluidic devices made of NOA1348, which is a fluorinated, UV-curable polymer with a refractive index similar to that of water, to a glass substrate. This technique is compatible with soft lithography techniques, making this approach readily integrated into existing microfabrication workflows. We also demonstrate that this material is compatible with quantitative phase imaging, which we used to validate the refractive index of the material post-fabrication. Finally, we demonstrate the use of this material with a novel image processing approach to precisely quantify the mass of cells in the microchannel without the use of cell segmentation or tracking. The novel image processing approach combined with this low refractive index material eliminates an important source of error, allowing for high-precision measurements of cell mass with a coefficient of variance of 1%.
机译:用于微流体器件制造的聚合物材料的光学性质可以在用于光学测量时冲击装置性能。特别地,用于微流体装置的常规聚合物材料具有相对于通常用于生物医学应用的含水介质的折射率差异很大。这可以在用于基于显微镜的测定时创造伪影。氟化可以降低聚合物折射率,但以降低的粘合成本,产生与器件粘合的问题。这里,我们提出了一种用于粘合由NOA1348制成的微流体装置的新型制造技术,其是氟化的UV可固化聚合物,其具有与水的折射率相似,玻璃基板。该技术与软光刻技术兼容,使得该方法容易地集成到现有的微制造工作流中。我们还表明该材料与定量相位成像相容,我们用于验证制造后材料的折射率。最后,我们用新的图像处理方法证明了这种材料的使用,以精确地量化微通道中的细胞质量而不使用细胞分段或跟踪。新颖的图像处理方法与该低折射率材料相结合,消除了一个重要的误差来源,允许具有1%的方差系数的细胞质量的高精度测量。

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