Publication: Endothelial microparticles prevent lipid-induced endothelial damage via Akt/eNOS signaling and reduced oxidative stress.
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Identifiers
Date
2017-07-27
Authors
Mahmoud, Ayman M
Wilkinson, Fiona L
McCarthy, Eoghan M
Moreno-Martinez, Daniel
Langford-Smith, Alexander
Romero, Miguel
Duarte, Juan
Alexander, M Yvonne
Advisors
Journal Title
Journal ISSN
Volume Title
Publisher
John Wiley & Sons, Inc.
Abstract
Endothelial microparticles (EMPs) are endothelium-derived submicron vesicles that are released in response to diverse stimuli and are elevated in cardiovascular disease, which is correlated with risk factors. This study investigates the effect of EMPs on endothelial cell function and dysfunction in a model of free fatty acid (FFA) palmitate-induced oxidative stress. EMPs were generated from TNF-α-stimulated HUVECs and quantified by using flow cytometry. HUVECs were treated with and without palmitate in the presence or absence of EMPs. EMPs were found to carry functional eNOS and to protect against oxidative stress by positively regulating eNOS/Akt signaling, which restored NO production, increased superoxide dismutase and catalase, and suppressed NADPH oxidase and reactive oxygen species (ROS) production, with the involvement of NF-erythroid 2-related factor 2 and heme oxygenase-1. Conversely, under normal conditions, EMPs reduced NO release and increased ROS and redox-sensitive marker expression. In addition, functional assays using EMP-treated mouse aortic rings that were performed under homeostatic conditions demonstrated a decline in endothelium-dependent vasodilatation, but restored the functional response under lipid-induced oxidative stress. These data indicate that EMPs harbor functional eNOS and potentially play a role in the feedback loop of damage and repair during homeostasis, but are also effective in protecting against FFA-induced oxidative stress; thus, EMP function is reflected by the microenvironment.-Mahmoud, A. M., Wilkinson, F. L., McCarthy, E. M., Moreno-Martinez, D., Langford-Smith, A., Romero, M., Duarte, J., Alexander, M. Y. Endothelial microparticles prevent lipid-induced endothelial damage via Akt/eNOS signaling and reduced oxidative stress.
Description
MeSH Terms
Cell-Derived Microparticles
Endothelial Cells
Endothelium, Vascular
Humans
Lipids
NADPH Oxidases
Nitric Oxide Synthase Type III
Oncogene Protein v-akt
Oxidative Stress
Reactive Oxygen Species
Vasodilation
Endothelial Cells
Endothelium, Vascular
Humans
Lipids
NADPH Oxidases
Nitric Oxide Synthase Type III
Oncogene Protein v-akt
Oxidative Stress
Reactive Oxygen Species
Vasodilation
DeCS Terms
Células endoteliales
Endotelio vascular
Especies reactivas de oxígeno
Estrés oxidativo
Humanos
Lípidos
Micropartículas derivadas de células
NADPH Oxidasas
Proteína oncogénica v-akt
Vasodilatación
Óxido nítrico sintasa de Tipo III
Endotelio vascular
Especies reactivas de oxígeno
Estrés oxidativo
Humanos
Lípidos
Micropartículas derivadas de células
NADPH Oxidasas
Proteína oncogénica v-akt
Vasodilatación
Óxido nítrico sintasa de Tipo III
CIE Terms
Keywords
Nrf2, endothelial dysfunction, extracellular microvesicles
Citation
Mahmoud AM, Wilkinson FL, McCarthy EM, Moreno-Martinez D, Langford-Smith A, Romero M, et al. Endothelial microparticles prevent lipid-induced endothelial damage via Akt/eNOS signaling and reduced oxidative stress. FASEB J. 2017 Oct;31(10):4636-4648.