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Updated: Sep 18, 2025

A High-Fidelity Porcine Model of Orthotopic Heart Transplantation Following Donation after Circulatory Death
Published on: June 6, 2025
A High-Fidelity Porcine Model of Orthotopic Heart Transplantation Following Donation after Circulatory Death
Krish C Dewan1, Abigail R Benkert2, Alejandro A Lobo1
1Department of Surgery, Duke University Medical Center.
Insights
Donation after circulatory death (DCD) heart transplantation may increase primary graft dysfunction (PGD). A new porcine model helps study DCD heart transplant PGD mechanisms and interventions to improve organ recovery.
Area of Science:
- Cardiovascular Surgery
- Transplantation Immunology
- Regenerative Medicine
Background:
- Organ donor shortages limit heart transplantation for advanced heart failure.
- Donation after circulatory death (DCD) heart transplantation (HT) expands the donor pool but may increase primary graft dysfunction (PGD).
- The molecular mechanisms of PGD in DCD HT, particularly related to warm ischemic injury, are not well understood.
Purpose of the Study:
- To develop and validate a high-fidelity non-survival porcine model of DCD orthotopic heart transplantation.
- To elucidate the molecular mechanisms contributing to PGD in DCD HT allografts.
- To investigate interventions for optimizing allograft preservation and early performance in DCD HT.
Main Methods:
- Development of a translational large animal surgical model replicating clinical DCD HT procedures.
- Adaptation of surgical techniques for porcine anatomy and physiology.
- Non-survival orthotopic heart transplantation in a porcine model.
Main Results:
- Successful development and validation of a high-fidelity porcine model for DCD orthotopic heart transplantation.
- The model replicates key aspects of the clinical perioperative and surgical approach.
- The model is suitable for mechanistic studies of PGD and testing interventions.
Conclusions:
- A novel porcine model of DCD HT provides a platform for studying PGD.
- This model can elucidate molecular mechanisms of PGD and facilitate research into improving DCD allograft outcomes.
- Further research using this model can enhance organ recovery and transplantation success rates.
Abstract:
The number of advanced heart failure patients who can receive a heart transplant is limited by a shortage of suitable organ donors. In efforts to expand the donor pool, alternative donation and procurement methods have been developed, including heart transplantation following donation after circulatory death (DCD HT). While short-term survival following DCD HT is non-inferior to heart transplantation with brain-dead donors, there may be an increased rate of primary graft dysfunction (PGD) associated with DCD HT allografts. The underlying etiology of PGD is multifactorial and incompletely understood. For DCD HT allografts, the period of warm ischemic injury during DCD procurement is a potential risk factor for PGD to which brain death allografts are not exposed. The functional warm ischemic time thus may be an important driver of PGD in DCD HT. However, the mechanisms underlying PGD in this clinical scenario are poorly understood at the molecular level. The work presented herein aims to describe the development and validation of a high-fidelity non-survival porcine model of DCD orthotopic heart transplantation. We hypothesize that the use of this translational large animal model is critical to elucidate molecular mechanisms contributing to PGD, as well as to investigate interventions designed to optimize allograft preservation and early performance. This model replicates the perioperative and surgical approach used in DCD HT clinically, with modifications to account for porcine anatomy and physiology. The development of this large animal surgical model will not only provide mechanistic insights into the development of PGD but also can be modified to enhance translational research efforts aimed at improving organ recovery following DCD HT.

