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Updated: May 22, 2026

Isolation and Differentiation of Stromal Vascular Cells to Beige/Brite Cells
Published on: March 28, 2013
Rosiglitazone attenuates NF-κB-mediated Nox4 upregulation in hyperglycemia-activated endothelial cells
Clintoria R Williams1, Xianghuai Lu, Roy L Sutliff
1Department of Medicine, Atlanta Veterans Affairs and Emory University Medical Centers, Georgia, USA.
Abstract:
Vascular complications, a major cause of morbidity and mortality in diabetic patients, are related to hyperglycemia-induced oxidative stress. Previously, we reported that rosiglitazone (RSG) attenuated vascular expression and activity of NADPH oxidases in diabetic mice. The mechanisms underlying these effects remain to be elucidated. We hypothesized that RSG acts directly on endothelial cells to modulate vascular responses in diabetes. To test this hypothesis, human aortic endothelial cells (HAECs) were exposed to normal glucose (NG; 5.6 mmol/l) or high glucose (HG; 30 mmol/l) concentrations. Select HAEC monolayers were treated with RSG, caffeic acid phenethyl ester (CAPE), diphenyleneiodonium (DPI), small interfering (si)RNA (to NF-κB/p65 or Nox4), or Tempol. HG increased the expression and activity of the NADPH oxidase catalytic subunit Nox4 but not Nox1 or Nox2. RSG attenuated HG-induced NF-κB/p65 phosphorylation, nuclear translocation, and binding to the Nox4 promoter. Inhibiting NF-κB with CAPE or siNF-κB/p65 also reduced HG-induced Nox4 expression and activity. HG-induced H(2)O(2) production was attenuated by siRNA-mediated knockdown of Nox4, and HG-induced HAEC monocyte adhesion was attenuated by treatment with RSG, DPI, CAPE, or Tempol. These results indicate that HG exposure stimulates HAEC NF-κB activation, Nox4 expression, and H(2)O(2) production and that RSG attenuates HG-induced oxidative stress and subsequent monocyte-endothelial interactions by attenuating NF-κB/p65 activation and Nox4 expression. This study provides novel insights into mechanisms by which the thiazolidinedione peroxisome proliferator-activated receptor-γ ligand RSG favorably modulates endothelial responses in the diabetic vasculature.
Insights
Rosiglitazone (RSG) reduces high glucose-induced oxidative stress in human aortic endothelial cells by inhibiting NF-κB activation and Nox4 expression, thereby preventing monocyte adhesion. This highlights RSG
Area of Science:
- Endothelial cell biology
- Diabetic vascular complications
- Oxidative stress mechanisms
Background:
- Vascular complications in diabetes are linked to oxidative stress.
- Rosiglitazone (RSG) previously showed potential in attenuating vascular NADPH oxidases in diabetic mice.
- Mechanisms of RSG's vascular effects in diabetes require further elucidation.
Purpose of the Study:
- To investigate if RSG directly modulates endothelial cell responses in a high glucose environment.
- To elucidate the molecular pathways through which RSG impacts endothelial cells under diabetic conditions.
Main Methods:
- Human aortic endothelial cells (HAECs) were exposed to normal or high glucose (HG).
- Cells were treated with RSG, NF-κB inhibitors (CAPE, siNF-κB/p65), Nox4 siRNA, or antioxidants (DPI, Tempol).
- NADPH oxidase (Nox4) expression, NF-κB activation, H2O2 production, and monocyte adhesion were assessed.
Main Results:
- HG increased Nox4 expression and activity in HAECs.
- RSG inhibited HG-induced NF-κB/p65 phosphorylation and nuclear translocation.
- RSG, NF-κB inhibition, and Nox4 knockdown attenuated HG-induced oxidative stress and monocyte adhesion.
Conclusions:
- High glucose stimulates NF-κB activation and Nox4 expression in HAECs, leading to oxidative stress and monocyte adhesion.
- RSG mitigates these effects by inhibiting NF-κB/p65 activation and subsequent Nox4 expression.
- RSG favorably modulates endothelial responses in diabetic conditions by reducing oxidative stress and endothelial-monocyte interactions.
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