Liquid HandlingMicrofabricationLaboratory AutomationMicrofluidicsRobotics and automationSupplemental record

micrIO: an open-source autosampler and fraction collector for automated microfluidic input–output

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Abstract

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.

Bibliographic details

Published
2019-11-04
Journal/source
Lab on a Chip
Publisher
Royal Society of Chemistry (RSC)
DOI
10.1039/c9lc00512a
Type
journal-article
Language
en
Volume / issue
20 / 1
Pages
93-106
ISSN
1473-0197, 1473-0189

Access and metrics

Open access
Yes
OA status
hybrid
License
cc-by-nc
Version
publishedVersion
Cited by
35
References
59
Retracted
No

Authors and affiliations

  1. Scott A. LongwellStanford Medicine · Stanford University
  2. Polly M. FordyceCorresponding authorChan Zuckerberg Initiative (United States) · Stanford Medicine · Stanford University

Topics and keywords

Microfluidic and Capillary Electrophoresis ApplicationsInnovative Microfluidic and Catalytic Techniques InnovationElectrowetting and Microfluidic TechnologiesMicrofluidicsPython (programming language)SoftwareComputer scienceComputer hardwareThroughputInterface (matter)Embedded systemNanotechnologyOperating systemMaterials science

Funding

  • National Institute of General Medical Sciences · 1DP2GM123641
  • National Institute of General Medical Sciences · R01GM107132
  • Alfred P. Sloan Foundation