Related Experiment Video
Updated: Feb 13, 2026

A Pre-Clinical Porcine Model of Orthotopic Heart Transplantation
Published on: April 27, 2019
Preclinical and clinical developments in Treg therapy for heart transplantation: Critical assessment and
Konstantinos Mengrelis1, Laurenz Wolner2, Rayna Lellis Lakatos3
1Medical University of Vienna, Department of Cardiac and Thoracic Aortic Surgery, Vienna, Austria.
Regulatory T cells (Tregs) represent a promising approach to induce donor-specific tolerance in cardiac transplantation, potentially reducing reliance on chronic immunosuppression. This review critically evaluates preclinical and clinical evidence. Preclinical studies demonstrate that adoptively transferred Tregs prolong cardiac allograft survival and prevent chronic allograft vasculopathy (CAV) in murine models through multiple suppressive mechanisms. Phase I/II trials in kidney and liver transplantation have already confirmed safety and feasibility of polyclonal Treg cell therapy, with evidence of immunosuppression reduction in selected patients. However, no cardiac-specific trials have been completed in adults, and critical translational barriers persist including limited in vivo persistence, phenotypic instability under inflammatory conditions, manufacturing complexity and incompatibility with deceased donor timelines. Emerging approaches show promise: CAR-engineered Tregs targeting HLA-A2 demonstrate enhanced specificity and establish infectious tolerance in preclinical cardiac transplant models, with preliminary data from the first-in-human kidney transplant data suggesting safety and efficacy. Thymus-derived Tregs offer advantages for pediatric recipients, with the first treated cardiac transplant patient showing preserved Treg homeostasis. This review identifies key research priorities necessary to translate Treg therapy into clinical cardiac transplantation practice.
Regulatory T cells (Tregs) represent a promising approach to induce donor-specific tolerance in cardiac transplantation, potentially reducing reliance on chronic immunosuppression. This review critically evaluates preclinical and clinical evidence. Preclinical studies demonstrate that adoptively transferred Tregs prolong cardiac allograft survival and prevent chronic allograft vasculopathy (CAV) in murine models through multiple suppressive mechanisms. Phase I/II trials in kidney and liver transplantation have already confirmed safety and feasibility of polyclonal Treg cell therapy, with evidence of immunosuppression reduction in selected patients. However, no cardiac-specific trials have been completed in adults, and critical translational barriers persist including limited in vivo persistence, phenotypic instability under inflammatory conditions, manufacturing complexity and incompatibility with deceased donor timelines. Emerging approaches show promise: CAR-engineered Tregs targeting HLA-A2 demonstrate enhanced specificity and establish infectious tolerance in preclinical cardiac transplant models, with preliminary data from the first-in-human kidney transplant data suggesting safety and efficacy. Thymus-derived Tregs offer advantages for pediatric recipients, with the first treated cardiac transplant patient showing preserved Treg homeostasis. This review identifies key research priorities necessary to translate Treg therapy into clinical cardiac transplantation practice.
Related Concept Videos
Preclinical Development: Overview
Development of the Heart
As the embryo undergoes lateral folding, these paired tubes approach each other, merging into a single primitive heart...
Heart Failure VI: Adjunct Therapies
Gene Therapy
Heart Failure III: Clinical Manifestations
Translation
Translation is the process of synthesizing proteins from the genetic information carried by messenger RNA (mRNA). Following transcription, it constitutes the final step in the expression of genes. This process is carried out by ribosomes, complexes of protein and specialized RNA molecules. Ribosomes, transfer RNA (tRNA), and other proteins produce a chain of amino acids—the polypeptide—as the end product of translation.
Translation Produces the Building Blocks of...

