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Published on: February 17, 2023
Tumor necrosis factor-alpha induces endothelial dysfunction in the prediabetic metabolic syndrome
Andrea Picchi1, Xue Gao, Souad Belmadani
1Departmentof Anesthesiology, Louisiana State University Health Sciences Center, New Orleans, USA.
Insights
Inflammation, specifically tumor necrosis factor-alpha (TNF-alpha), causes endothelial dysfunction in metabolic syndrome. This inflammatory cytokine increases superoxide production, impairing blood vessel function in obese rats.
Area of Science:
- Cardiovascular Biology
- Inflammation Research
- Metabolic Syndrome
Background:
- Endothelial dysfunction is a key feature of cardiovascular diseases.
- The link between metabolic syndrome, inflammation, and endothelial dysfunction is not fully understood.
- Tumor necrosis factor-alpha (TNF-alpha) is a pro-inflammatory cytokine implicated in cardiovascular pathologies.
Purpose of the Study:
- To investigate the role of TNF-alpha in endothelial dysfunction associated with metabolic syndrome.
- To determine if TNF-alpha overexpression causes impaired coronary endothelial function in obese, prediabetic rats.
Main Methods:
- Used Zucker obese fatty (ZOF) rats, a model for prediabetic metabolic syndrome.
- Measured endothelium-dependent (acetylcholine) and -independent (sodium nitroprusside) vasodilation in coronary small arteries.
- Assessed superoxide generation, TNF-alpha levels, and NAD(P)H oxidase activity.
Main Results:
- ZOF rats exhibited blunted acetylcholine-induced vasodilation but normal sodium nitroprusside-induced vasodilation.
- Superoxide generation and TNF-alpha levels were elevated in ZOF rats.
- Inhibition of TNF-alpha or superoxide production restored endothelial function in ZOF rats.
Conclusions:
- Endothelial dysfunction in metabolic syndrome is caused by TNF-alpha-induced superoxide production.
- TNF-alpha contributes to vascular pathology in metabolic syndrome by upregulating NAD(P)H oxidase subunits.
- Targeting TNF-alpha may be a therapeutic strategy for metabolic syndrome-related cardiovascular complications.
Abstract:
Inflammation is a condition that underscores many cardiovascular pathologies including endothelial dysfunction, but no link is yet established between the vascular pathology of the metabolic syndrome with a particular inflammatory cytokine. We hypothesized that impairments in coronary endothelial function in the obese condition the prediabetic metabolic syndrome is caused by TNF-alpha overexpression. To test this, we measured endothelium-dependent (acetylcholine) and -independent vasodilation (sodium nitroprusside) of isolated, pressurized coronary small arteries from lean control and Zucker obese fatty (ZOF, a model of prediabetic metabolic syndrome) rats. In ZOF rats, dilation to ACh was blunted compared with lean rats, but sodium nitroprusside-induced dilation was comparable. Superoxide (O2*-) generation was elevated in vessels from ZOF rats compared with lean rats, and administration of the O2*- scavenger TEMPOL, NAD(P)H oxidase inhibitor (apocynin), or anti-TNF-alpha restored endothelium-dependent dilation in the ZOF rats. Real-time PCR and Western blotting revealed that mRNA and protein of TNF-alpha were higher in ZOF rats than that in lean rats, whereas eNOS protein levels were reduced in the ZOF versus lean rats. Immunostaining showed that TNF-alpha in ZOF rat heart is localized in endothelial cells and vascular smooth muscle cells. Expression of NAD(P)H subunits p22 and p40-phox were elevated in ZOF compared with lean animals. Administration of TNF-alpha more than 3 days also induced expression of these NAD(P)H subunits and abrogated endothelium-dependent dilation. In conclusion, the results demonstrate the endothelial dysfunction occurring in the metabolic syndrome is the result of effects of the inflammatory cytokine TNF-alpha and subsequent production of O2*-.
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