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首页> 外文期刊>Journal of the Chinese Institute of Engineers >Design and analysis of single-cell capture microfluidic device
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Design and analysis of single-cell capture microfluidic device

机译:单细胞捕获微流控装置的设计与分析

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The aim of our study was to develop microfluidic devices using microchannel technology with the capability of capturing single cells. We analyzed and compared the cell-capturing efficiencies of series-loop microchannel and parallel-loop microchannel devices that were produced using polydimethylsiloxane (PDMS). Each set of microchannels was composed of a main flow channel and several branch channels with capturing zones. The microfluidic devices were designed to use the differences in flow rates between the main flow channel and the branch channels as a means of capturing single cells based on size and sequestering them within the microstructure of multiple capture zones. The data indicated that the flow medium encountered significant resistance in the series-loop microchannel device, which resulted in an inability to hold the captured cells within any of the capture zones. Flow resistance was, however, greatly reduced in the parallelloop microchannel device compared to the series-loop device, and single cells were captured in all the capturing zones of the device. Our data suggest that the parallel-loop microchannel technology has significant potential for development toward high-throughput platforms capable of capturing single cells for physiological analyses at the single-cell level.
机译:我们研究的目的是使用具有捕获单个细胞能力的微通道技术来开发微流体设备。我们分析并比较了使用聚二甲基硅氧烷(PDMS)生产的串联回路微通道和并联回路微通道设备的电池捕获效率。每组微通道由一个主流通道和几个带有捕获区的分支通道组成。设计微流体装置以利用主流通道和分支通道之间的流速差异作为基于大小捕获单个细胞并将其隔离在多个捕获区域的微结构中的一种手段。数据表明,流动介质在串联回路微通道设备中遇到了很大的阻力,导致无法将捕获的细胞保持在任何捕获区域内。然而,与串联回路装置相比,并联回路微通道装置的流动阻力大大降低,并且在装置的所有捕获区域中都捕获了单细胞。我们的数据表明,并行回路微通道技术具有向高通量平台发展的巨大潜力,该平台能够捕获单细胞用于单细胞水平的生理分析。

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