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Circulating mitochondria in deceased organ donors are associated with immune activation and early allograft dysfunction
Justin Pollara, R. Whitney Edwards, Liwen Lin, Victoria A. Bendersky, Todd V. Brennan
Justin Pollara, R. Whitney Edwards, Liwen Lin, Victoria A. Bendersky, Todd V. Brennan
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Research Article Inflammation Transplantation

Circulating mitochondria in deceased organ donors are associated with immune activation and early allograft dysfunction

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Abstract

Brain death that occurs in the setting of deceased organ donation for transplantation is associated with systemic inflammation of unknown origin. It has recently been recognized that mitochondria-derived damage-associated molecular patterns (mtDAMPs) released into the circulation in the setting of trauma and tissue injury are associated with a systemic inflammatory response. We examined the blood of deceased organ donors and found elevated levels of inflammatory cytokines and chemokines that correlated with levels of mtDAMPs. We also found that donor neutrophils are activated and that donor plasma contains a neutrophil-activating factor that is blocked by cyclosporin H, a formyl peptide receptor-1 antagonist. Examination of donor plasma by electron microscopy and flow cytometry revealed that free- and membrane-bound mitochondria are elevated in donor plasma. Interestingly, we demonstrated a correlation between donor plasma mitochondrial DNA levels and early allograft dysfunction in liver transplant recipients, suggesting a role for circulating mtDAMPs in allograft outcomes. Current approaches to prolong allograft survival focus on immune suppression in the transplant recipient; our data indicate that targeting inflammatory factors in deceased donors prior to organ procurement is another potential strategy for improving transplant outcomes.

Authors

Justin Pollara, R. Whitney Edwards, Liwen Lin, Victoria A. Bendersky, Todd V. Brennan

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Figure 6

Elevated levels of mitochondrial DNA and whole mitochondria are present in the circulation of deceased organ donors.

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Elevated levels of mitochondrial DNA and whole mitochondria are present ...
RT-qPCR was used to measure the amount of (A) mitochondrial DNA (mtDNA) and (B) genomic DNA (gDNA) present in plasma from healthy normal donors (NDs, n = 10) and deceased donors (donation after brain death [DBD], n = 55; donation after cardiac death [DCD], n = 10). (C) The majority of mtDNA, but not gDNA, was depleted from donor plasma (n = 48) by centrifugation. (D) Plasma from deceased donors (DBD, n = 41; DCD, n = 8) contain higher levels of microparticles per ml of plasma positive for TOMM22 compared with plasma from healthy NDs (n = 10). (E) Electron microscopy confirmed the presence of whole intact mitochondria (white arrows) in serum samples collected from deceased organ donors. Mitochondria were observed either within membrane vesicles (black arrows in left and center panels) or free (right panel). Scale bar: 500 nm. In A, B, and D gray boxes represent the interquartile range, the lines represent the median, and whiskers indicate the range of observed responses. Comparisons were performed using a Kruskal-Wallis with Dunn’s multiple comparison test (A, B, and D) or Wilcoxon matched-pairs signed-rank test (C). P < 0.05 was considered significant.

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