Background: Pig islet xenotransplantation is a promising alternative to allogeneic transplantation. However, the wide immunologic barrier between pigs and primates limits the long-term survival of the graft. MD-3, a novel monoclonal antibody (mAb) that recognizes a particular epitope of human ICAM-1, can render T cells tolerant to a xenograft by arresting dendritic cell maturation. We report the long-term survival of adult wild-type pig islets and successful retransplantation in nonhuman primates using a protocol comprising induction with MD-3 mAb and maintenance with anti-CD154 mAb and sirolimus.
Methods: Eleven rhesus monkeys were assigned to three groups. Group 1 (n = 4) involved treatment with MD-3 induction, short-term (<4 months) administration of anti-CD154 mAb, and maintenance therapy with sirolimus. Group 2 (n = 4) involved treatment with MD-3 induction and long-term maintenance therapy with anti-CD154 mAb and sirolimus. Group 3 (n = 3) involved only maintenance therapy with anti-CD154 mAb and sirolimus. Diabetes was induced in monkeys by streptozotocin, and pig islets (61 000-112 000 IEQ/kg for each transplant; up to 280 000 IEQ/kg per recipient) were infused through the portal vein. The in vivo functional potency of the isolated islets was tested by minimal model transplant in streptozotocin-induced diabetic NOD/SCID mice, and the mean AUC of blood glucose level divided by the number of follow-up days was calculated.
Results: The islet grafts survived more than 6 months (between 225 and 727 days) in nine of 12 transplants of MD-3-treated groups 1 and 2, whereas in the absence of MD-3 mAb, survival was <40 days. In three transplants of the MD-3-treated Group 2, functional graft survival was only for 104, 125, and 154 days. In these cases, a retrospective analysis suggested that the relatively short survival duration was associated with the relatively high AUC value in the NOD/SCID bioassay. Notably, when retransplantation was performed in Group 3, blood glucose control was extended up to 956 days, which was supported by MD-3 mAb-based suppression of adaptive immunity. No replication of cytomegalovirus genes was observed.
Conclusions: Long-term survival of pig islet xenografts and successful retransplantation were achieved with MD-3 mAb-based immunosuppression regimen in this pig-to-monkey transplantation model. It should be emphasized that these encouraging results were achieved following the transplantation of islets from pigs that had not been genetically modified. Considering that it is possible to further substantially reduce the destruction of grafted islet using genetically modified pig islet, the islet requirement could be reduced and much longer graft survival can be achieved.
Download full-text PDF |
Source |
---|---|
http://dx.doi.org/10.1111/xen.12362 | DOI Listing |
Transpl Int
January 2025
Pôle de Chirurgie Expérimentale et Transplantation, Université Catholique de Louvain, Brussels, Belgium.
Clinical pancreatic islet xenotransplantation will most probably rely on genetically modified pigs as donors. Several lines of transgenic pigs carrying one and more often, multiple modifications already exist. The vast majority of these modifications aim to mitigate the host immune response by suppressing major xeno-antigens, or expressing immunomodulatory molecules that act locally at the graft site.
View Article and Find Full Text PDFTranspl Int
December 2024
Molecular Animal Breeding and Biotechnology, Gene Center and Department of Veterinary Sciences, LMU Munich, Munich, Germany.
Xenotransplantation of porcine organs has made remarkable progress towards clinical application. A key factor has been the generation of genetically multi-modified source pigs for xenotransplants, protected against immune rejection and coagulation dysregulation. While efficient gene editing tools and multi-cistronic expression cassettes facilitate sophisticated and complex genetic modifications with multiple gene knockouts and protective transgenes, an increasing number of independently segregating genetic units complicates the breeding of the source pigs.
View Article and Find Full Text PDFEJNMMI Res
December 2024
Department of Medical Cell Biology, Department of Medical Sciences, Science for Life Laboratory, Uppsala University, Box 571, 75123, Uppsala, Sweden.
Background: Type 1 diabetes (T1D) is an autoimmune disease characterized by a progressive β-cell destruction. There are no clinically established methods for quantifying endocrine cells of the pancreas and current knowledge is almost exclusively based on autopsy material and functional measurements. Based on the expression of the γ-aminobutyric acid A receptors (GABARs) in pancreatic islets and the fact that GABAR agonists are being explored as treatment for T1D, we hypothesized that the positron emission tomography (PET) tracer [C]flumazenil ([C]FMZ) could serve as a marker of the endocrine mass of the pancreas.
View Article and Find Full Text PDFAm J Transplant
November 2024
Isla Technologies, Inc, San Carlos, California, USA. Electronic address:
In this study using a discordant, xenogeneic, transplant model we demonstrate the functionality and safety of the first stent-based bioartificial pancreas (BAP) device implanted endovascularly into an artery, harnessing the high oxygen content in blood to support islet viability. The device is a self-expanding nitinol stent that is coated with a bilayer of polytetrafluoroethylene that forms channels to hold islets embedded in a hydrogel. We completed a 1-month study in the nondiabetic swine model (N = 3) to test the safety of the device and to assess islet functionality after device recovery.
View Article and Find Full Text PDFTranspl Int
November 2024
Clinic Unit of Regenerative Medicine and Organ Transplants and Diabetes Research Institute, Istituto di Ricovero e Cura a Carattere Scientifico (IRCCS) Ospedale San Raffaele, Milan, Italy.
Enter search terms and have AI summaries delivered each week - change queries or unsubscribe any time!