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TNF-α alters the release and transfer of microparticle-encapsulated miRNAs from endothelial cells
Tamas Alexy1, Kimberly Rooney1, Martina Weber1
1Division of Cardiology, Emory University School of Medicine, Atlanta, Georgia; and.
Abstract:
MicroRNAs (miRNAs) encapsulated within microparticles (MPs) are likely to have a role in cell-to-cell signaling in a variety of diseases, including atherosclerosis. However, little is known about the mechanisms by which different cell types release and transfer miRNAs. Here, we examined TNF-α-induced release of MP-encapsulated miR-126, miR-21, and miR-155 from human aortic endothelial cells (ECs) and their transfer to recipient cells. ECs were treated with TNF-α (100 ng/ml) in the presence or absence of inhibitors that target different MP production pathways. MPs released in response to TNF-α were characterized by: 1) 70-80% decrease in miRNA/MP levels for miR-126 and -21 but a significant increase in pre-miR-155 and miR-155 (P < 0.05), 2) 50% reduction in uptake by recipient cells (P < 0.05), and 3) diminished ability to transfer miRNA to recipient cells. Cotreatment of donor ECs with TNF-α and caspase inhibitor (Q-VD-OPH, 10 μM) produced MPs that had: 1) 1.5- to 2-fold increase in miRNA/MP loading, 2) enhanced uptake by recipient cells (2-fold), and 3) increased ability to transfer miR-155. Cotreatment of ECs with TNF-α and Rho-associated kinase (ROCK) inhibitor (10 μM) produced MPs with features similar to those produced by TNF-α treatment alone. Our data indicate that TNF-α induced the production of distinct MP populations: ROCK-dependent, miRNA-rich MPs that effectively transferred their cargo and were antiapoptotic, and caspase-dependent, miRNA-poor MPs that were proapoptotic. These data provide insight into the relationship between MP production and extracellular release of miRNA, as well as the potential of encapsulated miRNA for cell-to-cell communication.
Insights
Tumor necrosis factor-alpha (TNF-α) triggers distinct microparticle (MP) populations from endothelial cells. Caspase inhibition yields miRNA-rich, antiapoptotic MPs, while ROCK inhibition yields miRNA-poor, proapoptotic MPs.
Area of Science:
- Cell biology
- Molecular biology
- Cardiovascular research
Background:
- MicroRNAs (miRNAs) within microparticles (MPs) mediate cell-to-cell signaling in diseases like atherosclerosis.
- Mechanisms of miRNA release and transfer by different cell types remain largely unknown.
Purpose of the Study:
- To investigate TNF-α-induced release and transfer of specific miRNAs (miR-126, miR-21, miR-155) from human aortic endothelial cells (ECs) via MPs.
- To elucidate the roles of different MP production pathways (caspase-dependent and ROCK-dependent) in miRNA loading and transfer.
Main Methods:
- Human aortic ECs were treated with TNF-α in the presence or absence of caspase or ROCK inhibitors.
- Released MPs were analyzed for miRNA content (miRNA/MP levels), uptake by recipient cells, and miRNA transfer efficiency.
- Apoptotic effects of different MP populations were assessed.
Main Results:
- TNF-α treatment altered miRNA profiles in MPs, decreasing miR-126/-21 and increasing pre-miR-155/miR-155.
- TNF-α-induced MPs showed reduced recipient cell uptake and miRNA transfer.
- Caspase inhibition alongside TNF-α produced miRNA-rich MPs with enhanced uptake and transfer, exhibiting antiapoptotic properties.
- ROCK inhibition yielded MPs similar to TNF-α treatment alone, characterized as miRNA-poor and proapoptotic.
Conclusions:
- TNF-α induces the release of distinct MP populations with differing miRNA content and biological functions.
- Caspase-dependent MPs are miRNA-rich and antiapoptotic, while ROCK-dependent MPs are miRNA-poor and proapoptotic.
- These findings offer insights into MP-mediated miRNA communication and its implications in disease.
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