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Updated: Jan 29, 2026

Mouse Kidney Transplantation: Models of Allograft Rejection
Published on: October 11, 2014
Circulating mitochondria in organ donors promote allograft rejection
Liwen Lin1, He Xu1, Muath Bishawi1,2
1Departments of Surgery, Duke University Medical Center, Durham, North Carolina.
Abstract:
The innate immune system is a critical regulator of the adaptive immune responses that lead to allograft rejection. It is increasingly recognized that endogenous molecules released from tissue injury and cell death are potent activators of innate immunity. Mitochondria, ancestrally related to bacteria, possess an array of endogenous innate immune-activating molecules. We have recently demonstrated that extracellular mitochondria are abundant in the circulation of deceased organ donors and that their presence correlates with early allograft dysfunction. Here we demonstrate the ability of mitochondria to activate endothelial cells (ECs), the initial barrier between a solid organ allograft and its host. We find that mitochondria exposure leads to the upregulation of EC adhesion molecules and their production of inflammatory cytokines and chemokines. Additionally, mitochondrial exposure causes dendritic cells to upregulate costimulatory molecules. Infusion of isolated mitochondria into heart donors leads to significant increase in allograft rejection in a murine heterotopic heart transplantation model. Finally, co-incubation of human peripheral blood mononuclear cells with mitochondria-treated ECs results in increased numbers of effector (IFN-γ+ , TNF-α+ ) CD8+ T cells. These data indicate that circulating extracellular mitochondria in deceased organ donors may directly activate allograft ECs and promote graft rejection in transplant recipients.
Insights
Extracellular mitochondria from deceased donors activate endothelial cells and immune cells, promoting organ transplant rejection. This highlights a novel mechanism contributing to early allograft dysfunction.
Area of Science:
- Immunology
- Transplantation Biology
- Cellular Biology
Background:
- The innate immune system plays a key role in allograft rejection.
- Endogenous molecules from cell damage activate innate immunity.
- Extracellular mitochondria are present in deceased organ donors and linked to graft dysfunction.
Purpose of the Study:
- To investigate the role of extracellular mitochondria in activating endothelial cells (ECs) and promoting allograft rejection.
- To understand the mechanisms by which mitochondria influence immune responses in transplantation.
Main Methods:
- Exposure of endothelial cells and dendritic cells to isolated mitochondria.
- Assessment of EC adhesion molecules and cytokine/chemokine production.
- Murine heterotopic heart transplantation model with isolated mitochondria infusion.
- Co-incubation of human peripheral blood mononuclear cells with treated ECs.
Main Results:
- Mitochondria exposure upregulates EC adhesion molecules and inflammatory mediators.
- Mitochondria activate dendritic cells by increasing costimulatory molecules.
- Mitochondria infusion accelerates allograft rejection in a mouse model.
- Mitochondria-treated ECs enhance effector CD8+ T cell responses.
Conclusions:
- Circulating extracellular mitochondria in deceased donors can activate allograft endothelial cells.
- Mitochondria contribute to graft rejection by promoting immune cell activation.
- Extracellular mitochondria represent a potential therapeutic target to improve transplant outcomes.
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