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Hyperhomocysteinemia activates nuclear factor-kappaB in endothelial cells via oxidative stress
Kathy K W Au-Yeung1, Connie W H Woo, Fion L Sung
1National Centre for Agri-Food Research in Medicine, Department of Animal Science, University of Manitoba, Canada.
Insights
High homocysteine levels activate nuclear factor-kappaB (NF-kappaB) in blood vessel cells, contributing to early atherosclerosis. This activation is linked to increased superoxide anions and involves IkappaB kinases.
Area of Science:
- Cardiovascular Biology
- Molecular Medicine
- Cellular Signaling
Background:
- Hyperhomocysteinemia is a known risk factor for cardiovascular diseases.
- Previous research indicated an interaction between nuclear factor-kappaB (NF-kappaB) activation and homocysteine (Hcy)-induced chemokine expression in vascular cells.
Purpose of the Study:
- To investigate the in vivo effects of hyperhomocysteinemia on NF-kappaB activation.
- To elucidate the mechanism of Hcy-induced NF-kappaB activation in endothelial cells.
Main Methods:
- Induction of hyperhomocysteinemia in Sprague-Dawley rats via a high-methionine diet.
- Analysis of NF-kappaB activation and superoxide anion levels in rat aortas.
- In vitro studies using human endothelial cells treated with Hcy, superoxide scavengers, and IkappaB kinase inhibitors.
Main Results:
- Hyperhomocysteinemia in rats led to increased activated NF-kappaB and superoxide anions in aortic endothelium.
- In endothelial cells, Hcy activated IkappaB kinases (IKKalpha/beta), causing IkappaBalpha degradation and subsequent NF-kappaB activation.
- Hcy-induced superoxide anion production was observed in endothelial cells.
- Superoxide anion scavengers and IKK inhibitors prevented Hcy-induced NF-kappaB activation.
Conclusions:
- Hcy-induced superoxide anion production plays a role in NF-kappaB activation.
- This activation occurs via IkappaB kinase activation.
- These findings suggest a mechanism for early atherosclerosis development in the vascular wall.
Abstract:
Hyperhomocysteinemia is an independent risk factor for cardiovascular diseases. Our previous studies demonstrated an important interaction between nuclear factor-kappaB (NF-kappaB) activation and homocysteine (Hcy)-induced chemokine expression in vascular smooth muscle cells and macrophages. The objective of the present study was to investigate the in vivo effect of hyperhomocysteinemia on NF-kappaB activation and the underlying mechanism of Hcy-induced NF-kappaB activation in endothelial cells. Hyperhomocysteinemia was induced in Sprague-Dawley rats after 4 weeks of a high-methionine diet. The activated form of NF-kappaB and increased level of superoxide anions were detected in the endothelium of aortas isolated from hyperhomocysteinemic rats. The underlying mechanism of Hcy-induced NF-kappaB activation was investigated in human umbilical cord vein endothelial cells and in human aortic endothelial cells. Incubation of cells with Hcy (100 micromol/L) activated IkappaB kinases (IKKalpha and IKKbeta), leading to phosphorylation and subsequent degradation of IkappaBalpha. As a consequence, NF-kappaB nuclear translocation, enhanced NF-kappaB/DNA binding activity, and increased transcriptional activity occurred. Additional analysis revealed a marked elevation of superoxide anion levels in Hcy-treated cells. Treatment of cells with a superoxide anion scavenger (polyethylene glycol-superoxide dismutase) or IkappaB kinase inhibitor (prostaglandin A(1)) could prevent Hcy-induced activation of IKK kinases and NF-kappaB in endothelial cells. In conclusion, these results suggest that Hcy-induced superoxide anion production may play a potential role for NF-kappaB activation in the early stages of atherosclerosis in the vascular wall via activation of IkappaB kinases.
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