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February 1, 2017Molecular Therapy194 citationsOpen Access

Human Pericardial Fluid Contains Exosomes Enriched with Cardiovascular-Expressed MicroRNAs and Promotes Therapeutic Angiogenesis

CBCristina BeltramiMBMarie BesnierSSSaran Shantikumar

Key Result

Pericardial fluid exosomes transfer let-7b-5p to endothelial cells, improving survival, proliferation, and post-ischemic blood flow recovery in mice.

Structured PICO

P
Population
Cultured endothelial cells, mice (post-ischemic blood flow recovery model), and leftover pericardial fluid from patients undergoing aortic valve surgery
I
Intervention
Pericardial fluid exosomes
C
Comparator
Peripheral plasma exosomes, let-7b-5p depleted exosomes, or control conditions
O
Outcome
Angiogenesis, endothelial cell survival, proliferation, networking, and post-ischemic blood flow recoverysurrogate

Pericardial fluid exosomes contain miRNAs, such as let-7b-5p, that promote therapeutic angiogenesis and vascular repair.

Abstract

The pericardial fluid (PF) is contained in the pericardial sac surrounding the heart. MicroRNA (miRNA) exchange via exosomes (endogenous nanoparticles) contributes to cell-to-cell communication. We investigated the hypotheses that the PF is enriched with miRNAs secreted by the heart and that it mediates vascular responses through exosome exchange of miRNAs. The study was developed using leftover material from aortic valve surgery. We found that in comparison with peripheral plasma, the PF contains exosomes enriched with miRNAs co-expressed in patients’ myocardium and vasculature. At a functional level, PF exosomes improved survival, proliferation, and networking of cultured endothelial cells (ECs) and restored the angiogenic capacity of ECs depleted (via Dicer silencing) of their endogenous miRNA content. Moreover, PF exosomes improved post-ischemic blood flow recovery and angiogenesis in mice. Mechanistically, (1) let-7b-5p is proangiogenic and inhibits its target gene, TGFBR1, in ECs; (2) PF exosomes transfer a functional let-7b-5p to ECs, thus reducing their TGFBR1 expression; and (3) let-7b-5p depletion in PF exosomes impairs the angiogenic response to these nanoparticles. Collectively, our data support the concept that PF exosomes orchestrate vascular repair via miRNA transfer. The pericardial fluid (PF) is contained in the pericardial sac surrounding the heart. MicroRNA (miRNA) exchange via exosomes (endogenous nanoparticles) contributes to cell-to-cell communication. We investigated the hypotheses that the PF is enriched with miRNAs secreted by the heart and that it mediates vascular responses through exosome exchange of miRNAs. The study was developed using leftover material from aortic valve surgery. We found that in comparison with peripheral plasma, the PF contains exosomes enriched with miRNAs co-expressed in patients’ myocardium and vasculature. At a functional level, PF exosomes improved survival, proliferation, and networking of cultured endothelial cells (ECs) and restored the angiogenic capacity of ECs depleted (via Dicer silencing) of their endogenous miRNA content. Moreover, PF exosomes improved post-ischemic blood flow recovery and angiogenesis in mice. Mechanistically, (1) let-7b-5p is proangiogenic and inhibits its target gene, TGFBR1, in ECs; (2) PF exosomes transfer a functional let-7b-5p to ECs, thus reducing their TGFBR1 expression; and (3) let-7b-5p depletion in PF exosomes impairs the angiogenic response to these nanoparticles. Collectively, our data support the concept that PF exosomes orchestrate vascular repair via miRNA transfer.

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Cite This Study

Beltrami et al. (2017) studied Ischemia / Angiogenesis. Pericardial fluid exosomes vs. Peripheral plasma was evaluated on Endothelial cell survival, proliferation, and post-ischemic blood flow recovery. Pericardial fluid exosomes transfer let-7b-5p to endothelial cells, improving survival, proliferation, and post-ischemic blood flow recovery in mice.

synapsesocial.com/papers/6a0909ce3a80a179319d04f4https://doi.org/10.1016/j.ymthe.2016.12.022
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