6533b7ddfe1ef96bd1274b46
RESEARCH PRODUCT
Bioengineering Thymus Organoids to Restore Thymic Function and Induce Donor-Specific Immune Tolerance to Allografts.
Yong FanXuehui GengAsako TajimaMaria GrupilloGiulio GualtierottiWilliam A. RudertSaik Kia GohIpsita BanerjeeMassimo TruccoSuzanne BerteraAntonina CoppolaAntonina CoppolaRita Bottinosubject
medicine.medical_specialtyLymphocyteBioengineeringThymus GlandBiologyRegenerative MedicineRegenerative medicineOrgan transplantationImmune toleranceMiceGeneticDrug DiscoveryImmune ToleranceGeneticsmedicineAnimalsTransplantation HomologousProgenitor cellMolecular BiologyMolecular Biology; Molecular Medicine; Genetics; Drug Discovery3003 Pharmaceutical Science; PharmacologyPharmacologyDecellularizationDrug Discovery3003 Pharmaceutical ScienceEpithelial CellsAllograftsOrganoidssurgical procedures operativemedicine.anatomical_structureImmunologyCancer researchMolecular MedicineOriginal ArticleCentral toleranceHoming (hematopoietic)description
One of the major obstacles in organ transplantation is to establish immune tolerance of allografts. Although immunosuppressive drugs can prevent graft rejection to a certain degree, their efficacies are limited, transient, and associated with severe side effects. Induction of thymic central tolerance to allografts remains challenging, largely because of the difficulty of maintaining donor thymic epithelial cells in vitro to allow successful bioengineering. Here, the authors show that three-dimensional scaffolds generated from decellularized mouse thymus can support thymic epithelial cell survival in culture and maintain their unique molecular properties. When transplanted into athymic nude mice, the bioengineered thymus organoids effectively promoted homing of lymphocyte progenitors and supported thymopoiesis. Nude mice transplanted with thymus organoids promptly rejected skin allografts and were able to mount antigen-specific humoral responses against ovalbumin on immunization. Notably, tolerance to skin allografts was achieved by transplanting thymus organoids constructed with either thymic epithelial cells coexpressing both syngeneic and allogenic major histocompatibility complexes, or mixtures of donor and recipient thymic epithelial cells. Our results demonstrate the technical feasibility of restoring thymic function with bioengineered thymus organoids and highlight the clinical implications of this thymus reconstruction technique in organ transplantation and regenerative medicine.
year | journal | country | edition | language |
---|---|---|---|---|
2015-07-01 |