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Cardiovascular Research· 2026Q1

A human engineered mini-heart platform for mimicking ventricular pump function

Marcelo C. Ribeiro, Mariel Cano-Jorge, Simone A. ten Den, Danique Snippert et al.

Short summary

Researchers engineered a functional 'mini-heart' chamber from human stem cells using a novel sacrificial molding technique, enabling non-invasive measurement of key cardiac pump parameters like stroke volume and ejection fraction.

AI-generated from the title and abstract; the full text is not read.

Key points

  • A 'mini-heart' chamber was engineered using human stem cells and a novel sacrificial molding technique.
  • The mini-heart exhibits intrinsic pumping function, enabling non-invasive measurement of hemodynamic parameters.
  • Key parameters measured include stroke volume, ejection fraction, and developed pressure.
  • The engineered tissue shows organized sarcomeres and responds to isoproterenol, indicating physiological relevance.

AI-generated from the title and abstract; the full text is not read.

Abstract

AIM: Engineered cardiac tissue models for in vitro physiological studies often fail to replicate the pump function of the heart. Despite promising advancements, the use of engineered cardiac chambers is often hindered by complex fabrication processes and invasive characterization techniques. Here, we engineered a chamber-like human cardiac model with pumping function, referred to as a 'mini-heart', by employing a novel sacrificial molding approach within a customized bioreactor. METHODS AND RESULTS: Human pluripotent stem cell-derived cardiomyocytes and human cardiac fibroblasts were embedded in a fibrin mix and casted around two gelatin bodies within a customized bioreactor. After fibrin polymerization, thermal degradation of gelatin was induced to obtain a single-inlet cardiac chamber coupled to a glass capillary inlet.The mini-heart's pumping capability was confirmed through optical recording of fluid displacement at the engineered tissue inlet, enabling the non-invasive acquisition of hemodynamic parameters such as stroke volume, stroke work, ejection fraction, and developed pressure. Morphological analysis of the engineered tissues revealed organized sarcomeres and extracellular matrix self-determination, highlighting the advantage of our degradable mold technology. Additionally, we have measured calcium transients during both spontaneous and electrically-paced beating, and observed a positive inotropic response to the β-adrenergic agonist drug isoproterenol. CONCLUSIONS: We present a biomimetic, chamber-like human cardiac model with intrinsic pumping function that enables non-invasive functional assessment of cardiac hemodynamics in vitro.

The authors' abstract, as published at the source. Cardiovascular Research, 2026 · DOI ↗

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Field: Biomedical Engineering

Biomedical EngineeringEngineering