Department of Bioengineering, Stanford University, Stanford, CA, USA.
Lab Chip. 2020 Jan 7;20(1):93-106. doi: 10.1039/c9lc00512a. Epub 2019 Nov 8.
Microfluidic devices are an enabling technology for many labs, facilitating a wide range of applications spanning high-throughput encapsulation, molecular separations, and long-term cell culture. In many cases, however, their utility is limited by a 'world-to-chip' barrier that makes it difficult to serially interface samples with these devices. As a result, many researchers are forced to rely on low-throughput, manual approaches for managing device input and output (IO) of samples, reagents, and effluent. Here, we present a hardware-software platform for automated microfluidic IO (micrIO). The platform, which is uniquely compatible with positive-pressure microfluidics, comprises an 'AutoSipper' for input and a 'Fraction Collector' for output. To facilitate widespread adoption, both are open-source builds constructed from components that are readily purchased online or fabricated from included design files. The software control library, written in Python, allows the platform to be integrated with existing experimental setups and to coordinate IO with other functions such as valve actuation and assay imaging. We demonstrate these capabilities by coupling both the AutoSipper and Fraction Collector to two microfluidic devices: a simple, valved inlet manifold and a microfluidic droplet generator that produces beads with distinct spectral codes. Analysis of the collected materials in each case establishes the ability of the platform to draw from and output to specific wells of multiwell plates with negligible cross-contamination between samples.
微流控设备是许多实验室的一项关键技术,可广泛应用于高通量封装、分子分离和长期细胞培养等领域。然而,在许多情况下,由于“从世界到芯片”的障碍,它们的实用性受到限制,使得难以将样品与这些设备连续接口。因此,许多研究人员被迫依赖于低通量、手动的方法来管理设备的输入和输出(IO),以管理样品、试剂和流出物。在这里,我们提出了一个用于自动化微流控 IO(micrIO)的硬件-软件平台。该平台与正压微流控技术独特兼容,包括用于输入的“AutoSipper”和用于输出的“Fraction Collector”。为了便于广泛采用,这两个组件均为开源构建,使用在线购买或根据包含的设计文件自行制造的组件构建而成。使用 Python 编写的软件控制库允许该平台与现有的实验设备集成,并协调 IO 与其他功能,如阀致动和分析成像。我们通过将 AutoSipper 和 Fraction Collector 与两个微流控设备进行耦合,演示了这些功能:一个简单的、带阀的入口歧管和一个微流控液滴发生器,可生成具有独特光谱代码的珠子。对每种情况下收集的材料进行分析,证明了该平台能够从具有可忽略交叉污染的特定孔中吸取样品,并将样品输出到多孔板的特定孔中。