© 2026 Optics and Photonics at Nottingham
43%
56.3%
8.8%
£5m+
Data for 2020-2025 from SciVal
Saleem, Umber; Meer, Berend J; Katili, Puspita A; Yusof, Nurul A N Mohd; Mannhardt, Ingra; Garcia, Ana Krotenberg; Tertoolen, Leon; Korte, Tessa; Vlaming, Maria L H; McGlynn, Karen; Nebel, Jessica; Bahinski, Anthony; Harris, Kate; Rossman, Eric; Xu, Xiaoping; Burton, Francis L; Smith, Godfrey L; Clements, Peter; Mummery, Christine L; Eschenhagen, Thomas; Hansen, Arne; Denning, Chris
Blinded, multicenter evaluation of drug-induced changes in contractility using human-induced pluripotent stem cell-derived cardiomyocytes Journal Article
In: Toxicol. Sci., vol. 176, no. 1, pp. 103–123, 2020.
Abstract | Tags: alternatives to animal testing, cardiomyocytes, contractility, CRACK-IT project, electrophysiology, human-induced pluripotent stem cells, inotropy, predictive toxicology, safety pharmacology
@article{Saleem2020-kf,
title = {Blinded, multicenter evaluation of drug-induced changes in
contractility using human-induced pluripotent stem cell-derived
cardiomyocytes},
author = {Umber Saleem and Berend J Meer and Puspita A Katili and Nurul A N Mohd Yusof and Ingra Mannhardt and Ana Krotenberg Garcia and Leon Tertoolen and Tessa Korte and Maria L H Vlaming and Karen McGlynn and Jessica Nebel and Anthony Bahinski and Kate Harris and Eric Rossman and Xiaoping Xu and Francis L Burton and Godfrey L Smith and Peter Clements and Christine L Mummery and Thomas Eschenhagen and Arne Hansen and Chris Denning},
year = {2020},
date = {2020-07-01},
journal = {Toxicol. Sci.},
volume = {176},
number = {1},
pages = {103\textendash123},
publisher = {Oxford University Press (OUP)},
abstract = {Animal models are 78% accurate in determining whether drugs
will alter contractility of the human heart. To evaluate the
suitability of human-induced pluripotent stem cell-derived
cardiomyocytes (hiPSC-CMs) for predictive safety pharmacology,
we quantified changes in contractility, voltage, and/or Ca2+
handling in 2D monolayers or 3D engineered heart tissues (EHTs).
Protocols were unified via a drug training set, allowing
subsequent blinded multicenter evaluation of drugs with known
positive, negative, or neutral inotropic effects. Accuracy
ranged from 44% to 85% across the platform-cell
configurations, indicating the need to refine test conditions.
This was achieved by adopting approaches to reduce
signal-to-noise ratio, reduce spontaneous beat rate to $\leq$ 1
Hz or enable chronic testing, improving accuracy to 85% for
monolayers and 93% for EHTs. Contraction amplitude was a good
predictor of negative inotropes across all the platform-cell
configurations and of positive inotropes in the 3D EHTs.
Although contraction- and relaxation-time provided confirmatory
readouts forpositive inotropes in 3D EHTs, these parameters
typically served as the primary source of predictivity in 2D.
The reliance of these ``secondary'' parameters to inotropy in
the 2D systems was not automatically intuitive and may be a
quirk of hiPSC-CMs, hence require adaptations in interpreting
the data from this model system. Of the platform-cell
configurations, responses in EHTs aligned most closely to the
free therapeutic plasma concentration. This study adds to the
notion that hiPSC-CMs could add value to drug safety evaluation.},
keywords = {alternatives to animal testing, cardiomyocytes, contractility, CRACK-IT project, electrophysiology, human-induced pluripotent stem cells, inotropy, predictive toxicology, safety pharmacology},
pubstate = {published},
tppubtype = {article}
}
A part of the University of Nottingham
© 2026 Optics and Photonics at Nottingham. Created for free using WordPress and Kubio