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January 29, 2025Nature144 citationsOpen Access

Engineered heart muscle allografts for heart repair in primates and humans

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AJAhmad-Fawad JebranTSTim SeidlerMTMalte Tiburcy

Key Points

  • To evaluate the safety, retention, and remuscularization efficacy of induced pluripotent stem cell-derived engineered heart muscle allografts in primate models and a human heart failure patient.
  • Tested epicardial engineered heart muscle (EHM) allografts derived from 40 to 200 million induced pluripotent stem cell cardiomyocytes and stromal cells in rhesus macaques with and without myocardial infarction.
  • Assessed long-term graft retention, vascularization, contractility, and ejection fraction over up to 6 months using histopathology and perfusion MRI, alongside safety monitoring for arrhythmias and tumorigenesis.
  • Translated the GMP-compatible protocol to a first-in-human clinical trial in a patient with advanced heart failure.
  • EHM allografts achieved retention for up to 6 months and dose-dependently enhanced target heart wall contractility and ejection fraction in macaque heart failure models without inducing arrhythmias or tumors.
  • Histopathology and gadolinium perfusion MRI confirmed functional vascularization and tissue integration in primates.
  • First-in-human EHM implantation demonstrated successful remuscularization in a patient with advanced heart failure.

Abstract

Cardiomyocytes can be implanted to remuscularize the failing heart1-7. Challenges include sufficient cardiomyocyte retention for a sustainable therapeutic impact without intolerable side effects, such as arrhythmia and tumour growth. We investigated the hypothesis that epicardial engineered heart muscle (EHM) allografts from induced pluripotent stem cell-derived cardiomyocytes and stromal cells structurally and functionally remuscularize the chronically failing heart without limiting side effects in rhesus macaques. After confirmation of in vitro and in vivo (nude rat model) equivalence of the newly developed rhesus macaque EHM model with a previously established Good Manufacturing Practice-compatible human EHM formulation8, long-term retention (up to 6 months) and dose-dependent enhancement of the target heart wall by EHM grafts constructed from 40 to 200 million cardiomyocytes/stromal cells were demonstrated in macaques with and without myocardial infarction-induced heart failure. In the heart failure model, evidence for EHM allograft-enhanced target heart wall contractility and ejection fraction, which are measures for local and global heart support, was obtained. Histopathological and gadolinium-based perfusion magnetic resonance imaging analyses confirmed cell retention and functional vascularization. Arrhythmia and tumour growth were not observed. The obtained feasibility, safety and efficacy data provided the pivotal underpinnings for the approval of a first-in-human clinical trial on tissue-engineered heart repair. Our clinical data confirmed remuscularization by EHM implantation in a patient with advanced heart failure.

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Cite This Study

Jebran et al. (2025) studied this question.

synapsesocial.com/papers/69d437d10a6874f46ce109adhttps://doi.org/10.1038/s41586-024-08463-0
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