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Organs-on-chips with integrated electrodes for trans-epithelial electrical resistance (TEER) measurements of human epithelial barrier function

Lab on a Chip · 2017 · Vol. 17(13) · pp. 2264–2271
Olivier HenryRémi VillenaveMichael J. CronceWilliam D. LeineweberMaximilian A. BenzDonald E. Ingber

Abstract

Trans-epithelial electrical resistance (TEER) is broadly used as an experimental readout and a quality control assay for measuring the integrity of epithelial monolayers cultured under static conditions in vitro, however, there is no standard methodology for its application to microfluidic organ-on-a-chip (organ chip) cultures. Here, we describe a new microfluidic organ chip design that contains embedded electrodes, and we demonstrate its utility for assessing formation and disruption of barrier function both within a human lung airway chip lined by a fully differentiated mucociliary human airway epithelium and in a human gut chip lined by intestinal epithelial cells. These chips with integrated electrodes enable real-time, non-invasive monitoring of TEER and can be applied to measure barrier function in virtually any type of cultured cell.

3D Printing in Biomedical ResearchNeuroscience and Neural EngineeringPlanarian Biology and ElectrostimulationBarrier functionMicrofluidicsEpitheliumIn vitroOrgan-on-a-chipMicrofluidic chipCell biologyMaterials scienceChemistryBiology

MeSH terms

Cells, CulturedEpithelial CellsEpitheliumEquipment DesignHumansModels, BiologicalOrgan Culture TechniquesElectric ImpedanceLab-On-A-Chip Devices

Funding

  • Harvard University
  • Defense Advanced Research Projects Agency
  • Hansjörg Wyss Institute for Biologically Inspired Engineering, Harvard University
Citations
443
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18.05
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31
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