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Published on: August 12, 2025
Microparticles from apoptotic monocytes enhance nitrosative stress in human endothelial cells
Maria Letizia Mastronardi1, Hadj Ahmed Mostefai, Raffaella Soleti
1INSERM, U694, France.
Abstract:
Microparticles are membrane vesicles with procoagulant and proinflammatory properties released during cell activation or apoptosis. Microparticles from monocytes have been implicated in atherosclerosis and vascular inflammation, but their direct effects on endothelial cells are not completely elucidated. The present study was designed to dissect the signaling pathways of monocytic microparticles in endothelial cells with respect to both NO pathway and reactive oxygen species. Microparticles were produced by treatment of human monocytic cell line THP-1 with the apoptotic agent VP-16. Human endothelial cells were treated with monocytic microparticles and then, we studied their effects on nitrosative and oxidative stresses. Incubation of human endothelial cells with microparticles enhanced the production of NO without affecting superoxide anions generation. Microparticles did not affect endothelial NO synthase expression and its phosphorylation. Interestingly, microparticles decreased caveolin-1 expression and increased its phosphorylation. Inhibition of PI-3-kinase or MEK1/2 reversed the effects of microparticles on caveolin-1 expression but not its phosphorylation. Moreover, microparticles increased nitration of several proteins, reflecting peroxynitrite production, which was prevented by blockade of PI-3-kinase pathway. In summary, monocyte microparticles active multiple pathways related to nitrosative stress in endothelial cells including both PI-3-kinase and ERK1/2 in the regulation of caveolin-1 expression. These data underscore the pleiotropic effect of microparticles on endothelial cells and suggest that they probably play a critical role on vascular function.
Insights
Monocyte-derived microparticles enhance nitric oxide (NO) production in endothelial cells, impacting nitrosative stress pathways. These microparticles influence caveolin-1 expression and phosphorylation, suggesting a role in vascular function.
Area of Science:
- Endothelial cell biology
- Vascular inflammation
- Cell signaling
Background:
- Microparticles (MPs) are vesicles released from activated or apoptotic cells.
- Monocyte-derived MPs are linked to atherosclerosis and vascular inflammation.
- Their precise impact on endothelial cell signaling remains unclear.
Purpose of the Study:
- To investigate the signaling pathways of monocytic microparticles in endothelial cells.
- To examine effects on nitric oxide (NO) and reactive oxygen species (ROS) pathways.
- To elucidate the role of microparticles in nitrosative and oxidative stress.
Main Methods:
- Microparticles were generated from THP-1 cells treated with VP-16.
- Human endothelial cells were exposed to these microparticles.
- Effects on NO, superoxide, endothelial NO synthase (eNOS), caveolin-1, and protein nitration were assessed.
- Inhibition of PI-3-kinase and MEK1/2 pathways was utilized.
Main Results:
- Microparticle treatment increased NO production but not superoxide generation.
- Endothelial NO synthase (eNOS) expression and phosphorylation remained unchanged.
- Caveolin-1 expression decreased, while its phosphorylation increased.
- PI-3-kinase and ERK1/2 pathways mediated microparticle effects on caveolin-1 expression.
- Microparticles enhanced protein nitration, indicating peroxynitrite production, which was blocked by PI-3-kinase inhibition.
Conclusions:
- Monocyte microparticles activate multiple nitrosative stress pathways in endothelial cells.
- PI-3-kinase and ERK1/2 pathways are involved in regulating caveolin-1 expression by microparticles.
- These findings highlight the complex effects of microparticles on endothelial cells and their potential role in vascular health.
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