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Ensembles of engineered cardiac tissues for physiological and pharmacological study: Heart on a chip

Lab on a Chip · 2011 · Vol. 11(24) · pp. 4165–4165
Anna GrosbergPatrick W. AlfordMegan L. McCainKevin Kit Parker

Abstract

Traditionally, muscle physiology experiments require multiple tissue samples to obtain morphometric, electrophysiological, and contractility data. Furthermore, these experiments are commonly completed one at a time on cover slips of single cells, isotropic monolayers, or in isolated muscle strips. In all of these cases, variability of the samples hinders quantitative comparisons among experimental groups. Here, we report the design of a "heart on a chip" that exploits muscular thin film technology--biohybrid constructs of an engineered, anisotropic ventricular myocardium on an elastomeric thin film--to measure contractility, combined with a quantification of action potential propagation, and cytoskeletal architecture in multiple tissues in the same experiment. We report techniques for real-time data collection and analysis during pharmacological intervention. The chip is an efficient means of measuring structure-function relationships in constructs that replicate the hierarchical tissue architectures of laminar cardiac muscle.

3D Printing in Biomedical ResearchNeuroscience and Neural EngineeringCellular Mechanics and InteractionsContractilityCardiac muscleBiomedical engineeringReplicateMyocyteComputer scienceBiologyAnatomyCardiologyInternal medicine

MeSH terms

Acrylic ResinsAnimalsCells, CulturedDimethylpolysiloxanesEpinephrineFluorescent DyesRats, Sprague-DawleyTissue EngineeringMyocytes, CardiacMicrofluidic Analytical TechniquesRats

Funding

  • National Science Foundation
  • McMaster University
Citations
528
FWCI
23.20
field-weighted impact
References
45
Percentile
100%
vs. same field & year
Citations per year
References
Stress-dependent finite growth in soft elastic tissues
Journal of Biomechanics · 1994 · 1,429 citations
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