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Published on: December 7, 2017
Hyperglycemic Adipocyte-Derived Exosomes Cause Oxidative Stress and Lipid Peroxidation in Brain Microvascular
Harshal Sawant1, Bowen Sun1, Yuchen Li1
1Department of Biomedical Sciences, Joan C. Edwards School of Medicine, Marshall University, Huntington, WV 25701, USA.
Abstract:
Background/Aims: Type 2 diabetes mellitus (T2DM) is characterized by hyperglycemia and is a risk factor for stroke. Our previous studies demonstrated that adipocyte-derived exosomes (Ad-EXs) mediate adipose-brain communication. This study investigated the effects of hyperglycemic subcutaneous and visceral Ad-EXs on brain microvascular endothelial cell (BMEC) dysfunction during ischemic injury. Hypothesis: Hyperglycemic Ad-EXs exacerbate stroke injury via inducing oxidative stress and lipid peroxidation in BMECs. Methods: EXs were isolated from primary human subcutaneous and visceral adipocytes cultured in normal glucose (NG): NG-S-Ad-EXs and NG-V-Ad-EXs, or high-glucose (HG, 25 mM) media: HG-S-Ad-EXs and HG-V-Ad-EXs by ultracentrifugation and characterized by a nanoparticle tracking analysis system. PKH26-labeled Ad-EXs were used to evaluate uptake mechanisms in human BMECs (HBMECs). Functional effects were assessed in hypoxia/reoxygenation (H/R)-injured HBMECs treated with different Ad-EXs. Oxidative stress and lipid peroxidation markers (NOX2/4, MDA, 4-HNE, and GPX4) were analyzed. Results: HG increased Ad-EX release from both adipocyte depots. HG-derived Ad-EXs increased HBMEC cytotoxicity and permeability while reducing angiogenesis after H/R injury. Mechanistically, HG-Ad-EXs promoted oxidative stress through increased NOX2/4 and lipid peroxidation via elevated MDA/4-HNE and reduced GPX4 expression. Conclusions: Hyperglycemic Ad-EX triggered oxidative stress via NOX2/4 and lipid peroxidation via MDA/4HNE/GPX4, leading to impaired HBMEC functioning, which was exacerbated in the H/R injury condition.
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