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Updated: Jan 29, 2026

Automated Contraction Analysis of Human Engineered Heart Tissue for Cardiac Drug Safety Screening
Published on: April 15, 2017
Engineering Human 3D Cardiac Tissues for Predictive Functional Drug Screening
Ester Sapir Baruch1,2,3,4, Daniel Rosner1,3,4, Elisabeth Riska1,3,4,5
1The Shmunis School of Biomedicine and Cancer Research, Faculty of Life Sciences, Tel Aviv University, Tel Aviv 6997801, Israel.
Abstract:
Background/Objectives: Cardiotoxicity remains a leading cause of drug withdrawal. Conventional preclinical models, such as two-dimensional (2D) cell cultures and animal studies, often fail to accurately predict human cardiac responses. While 2D cultures lack the complex architecture and dynamic functionality of native myocardium, interspecies differences limit the translational relevance of animal models. The objective of this study was to develop a human-relevant, in vitro platform that enables predictive and functional assessment of drug-induced cardiotoxicity. Methods: Here, we present a high-throughput in vitro platform for cardiotoxicity screening using three-dimensional (3D) cardiac tissues derived from human induced pluripotent stem cells (hiPSCs) within a thermoresponsive extracellular matrix-derived hydrogel. The hydrogel enables homogeneous encapsulation, differentiation in 3D, and long-term assembly into a functional cardiac tissue. Maturation was validated by immunostaining for cardiac-specific markers, and calcium imaging was employed to monitor electrical signal propagation. Contractile performance, defined by beat rate and contraction amplitude, was quantified using video-based motion analysis. The platform was applied to evaluate the dose-dependent effects of various cardioactive compounds, including β-adrenergic agonists ((-) epinephrine and dopamine), a cardiotoxic chemotherapeutic (doxorubicin), a sinus node inhibitor (ivabradine), a calcium channel blocker (verapamil), and a β-adrenergic antagonist (metoprolol). Results: The engineered cardiac tissues exhibited functional maturation and stable contractile behavior. Drug testing demonstrated compound-specific, dose-dependent functional responses. For each compound, the system faithfully reproduced the expected physiological responses. Conclusions: This human-relevant, scalable platform enables sensitive, multiparametric functional assessment of cardiac tissues, offering a cost-effective and predictive tool for preclinical drug safety testing. By bridging the gap between in vitro assays and human physiology, it holds promise to enhance translational accuracy while reducing reliance on animal models.
Insights
This study developed a novel 3D human cardiac tissue platform for drug-induced cardiotoxicity screening. The advanced in vitro model accurately predicts human cardiac responses, improving preclinical drug safety testing and reducing animal use.
Area of Science:
- Biomedical Engineering
- Cardiovascular Research
- Drug Discovery
Background:
- Cardiotoxicity is a major reason for drug withdrawal.
- Current preclinical models (2D cultures, animal studies) have limitations in predicting human cardiac responses.
- There is a need for human-relevant in vitro platforms for cardiotoxicity assessment.
Purpose of the Study:
- To develop a high-throughput, human-relevant in vitro platform for predictive cardiotoxicity screening.
- To utilize 3D cardiac tissues derived from human induced pluripotent stem cells (hiPSCs).
- To enable functional assessment of drug effects on cardiac tissue.
Main Methods:
- Engineered 3D cardiac tissues from hiPSCs within a thermoresponsive hydrogel.
- Validated tissue maturation using immunostaining and calcium imaging.
- Quantified contractile performance (beat rate, contraction amplitude) via video analysis.
- Tested dose-dependent effects of various cardioactive compounds.
Main Results:
- The engineered cardiac tissues demonstrated functional maturation and stable contractile behavior.
- Drug testing revealed compound-specific, dose-dependent functional responses.
- The platform accurately reproduced expected physiological responses for tested compounds.
Conclusions:
- The developed scalable platform offers sensitive, multiparametric functional assessment of cardiac tissues.
- This cost-effective tool enhances preclinical drug safety testing and translational accuracy.
- The platform reduces reliance on animal models for cardiotoxicity evaluation.
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