Real-time monitoring of epithelial barrier function by impedance spectroscopy in a microfluidic platform.
Joao FernandesNikita KarraJoel BowringRiccardo RealeJonathan JamesCornelia BlumeTheresa J PellWendy C RowanDonna E DaviesEmily Jane SwindleHywel MorganPublished in: Lab on a chip (2022)
A multichannel microfluidic platform for real-time monitoring of epithelial barrier integrity by electrical impedance has been developed. Growth and polarization of human epithelial cells from the airway or gastrointestinal tract was continuously monitored over 5 days in 8 parallel, individually perfused microfluidic chips. Electrical impedance data were continuously recorded to monitor cell barrier formation using a low-cost bespoke impedance analyser. Data was analysed using an electric circuit model to extract the equivalent transepithelial electrical resistance and epithelial cell layer capacitance. The cell barrier integrity steadily increased overtime, achieving an average resistance of 418 ± 121 Ω cm 2 (airway cells) or 207 ± 59 Ω cm 2 (gastrointestinal cells) by day 5. The utility of the polarized airway epithelial barrier was demonstrated using a 24 hour challenge with double stranded RNA to mimic viral infection. This caused a rapid decrease in barrier integrity in association with disruption of tight junctions, whereas simultaneous treatment with a corticosteroid reduced this effect. The platform is able to measure barrier integrity in real-time and is scalable, thus has the potential to be used for drug development and testing.
Keyphrases
- high throughput
- single cell
- induced apoptosis
- low cost
- circulating tumor cells
- cell cycle arrest
- cell therapy
- endothelial cells
- oxidative stress
- single molecule
- stem cells
- high resolution
- blood pressure
- magnetic resonance
- endoplasmic reticulum stress
- dual energy
- cell death
- computed tomography
- risk assessment
- blood brain barrier
- quantum dots
- signaling pathway
- artificial intelligence
- induced pluripotent stem cells
- human health
- contrast enhanced