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Proteomic profiling of plasma extracellular vesicles reveals a therapeutically targetable liver-heart axis in cardiac transplantation
Shiyu Dai, Wei Zhou, Fangyu Chen, Huanyu Zhang, Zhenchun Ji, Xuejing Zong, Wanruo Zhang, Jie Hu, Shumin Jiang, Fei Wang, Zhenya Shen
Shiyu Dai, Wei Zhou, Fangyu Chen, Huanyu Zhang, Zhenchun Ji, Xuejing Zong, Wanruo Zhang, Jie Hu, Shumin Jiang, Fei Wang, Zhenya Shen
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Research Article Cardiology Immunology

Proteomic profiling of plasma extracellular vesicles reveals a therapeutically targetable liver-heart axis in cardiac transplantation

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Abstract

Extracellular vesicle–mediated interorgan communication represents a promising frontier in transplant immunology; however, its role in cardiac allograft rejection remains poorly characterized. We performed proteomic profiling of plasma-derived extracellular vesicles in a rat heterotopic heart transplantation model and identified a distinct liver-predominant protein signature during acute rejection, with antithrombin III (ATIII) emerging as a top candidate. Functional validation revealed that pharmacological extracellular vesicle inhibition intensified systemic and intragraft inflammation, whereas adeno-associated virus–mediated silencing of hepatic ATIII directly accelerated allograft rejection. Conversely, adeno-associated virus–mediated hepatocyte-specific ATIII overexpression attenuated rejection pathology, reduced immune cell recruitment, and markedly prolonged median graft survival. This protective effect was achieved without evidence of coagulopathic complications, indicating an immunomodulatory mechanism beyond ATIII’s canonical anticoagulant function. Mechanistically, ATIII overexpression was associated with upregulation of heme oxygenase-1 (HO-1) in the liver and suppression of proinflammatory cytokine expression in the graft. These findings highlight hepatocyte-derived extracellular vesicles as important mediators of a liver-heart signaling axis in transplant rejection and further implicate the protein ATIII as a contributor to this axis. Our study reveals a therapeutically targetable liver-heart signaling axis in transplant rejection, whereby enhancing liver-derived ATIII or its downstream pathways (such as HO-1) could attenuate acute cardiac allograft rejection.

Authors

Shiyu Dai, Wei Zhou, Fangyu Chen, Huanyu Zhang, Zhenchun Ji, Xuejing Zong, Wanruo Zhang, Jie Hu, Shumin Jiang, Fei Wang, Zhenya Shen

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Figure 1

Characterization of plasma-derived EVs in cardiac allograft rejection models.

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Characterization of plasma-derived EVs in cardiac allograft rejection mo...
(A) Experimental workflow for plasma-derived EV proteomics. Heterotopic heart transplantation was performed in 3 cohorts: the sham-operated controls (Sham), isogeneic group (Iso, Lewis to Lewis), and allogeneic group (Allo, Brown Norway to Lewis). Plasma and graft tissues were collected at postoperative day 5 for proteomic profiling and histopathological assessment. (B) Representative H&E, CD4, and CD8 IHC images of cardiac graft sections from 3 rats per group. Scale bar: 50 μm. (C) Cellular rejection severity quantified using the 2004 International Society for Heart and Lung Transplantation (ISHLT) guidelines (n = 3, Mann-Whitney U test). Data are presented as individual values with median. (D) Representative transmission electron microscopy images of purified EVs from 3 rats per group. Scale bar: 200 nm. (E) Representative nanoparticle tracking analysis size distribution profiles from pooled EV samples. (F) Representative Western blots of canonical EV markers (CD9, CD63, CD81, and TSG101) and the cellular contaminant Calnexin (3 rats per group). Quantification of the bands is presented in Supplemental Figure 1. Blots are representative of 2 independent experiments.

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