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Continuous perfusion microfluidic cell culture array for high‐throughput cell‐based assays

Biotechnology and Bioengineering · 2004 · Vol. 89(1) · pp. 1–8
Paul J. HungPhilip LeePoorya SabounchiRobert LinLuke P. Lee

Abstract

We present for the first time a microfluidic cell culture array for long-term cellular monitoring. The 10 x 10 array could potentially assay 100 different cell-based experiments in parallel. The device was designed to integrate the processes used in typical cell culture experiments on a single self-contained microfluidic system. Major functions include repeated cell growth/passage cycles, reagent introduction, and real-time optical analysis. The single unit of the array consists of a circular microfluidic chamber, multiple narrow perfusion channels surrounding the main chamber, and four ports for fluidic access. Human carcinoma (HeLa) cells were cultured inside the device with continuous perfusion of medium at 37 degrees C. The observed doubling time was 1.4 +/- 0.1 days with a peak cell density of approximately 2.5*10(5) cells/cm(2). Cell assay was demonstrated by monitoring the fluorescence localization of calcein AM from 1 min to 10 days after reagent introduction. Confluent cell cultures were passaged within the microfluidic chambers using trypsin and successfully regrown, suggesting a stable culture environment suitable for continuous operation. The cell culture array could offer a platform for a wide range of assays with applications in drug screening, bioinformatics, and quantitative cell biology.

3D Printing in Biomedical ResearchMicrofluidic and Bio-sensing TechnologiesInnovative Microfluidic and Catalytic Techniques InnovationMicrofluidicsCalceinCell cultureSingle-cell analysisCellHeLaReagentChemistryBiophysicsNanotechnology

MeSH terms

Equipment DesignFluoresceinsFluorescent DyesHeLa CellsHumansTime FactorsCell Culture TechniquesMicrofluidic Analytical TechniquesCell Proliferation
Citations
517
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References
A microfabricated array bioreactor for perfused 3D liver culture
Biotechnology and Bioengineering · 2002 · 464 citations
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