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Updated: Aug 19, 2026

En Face Detection of Nitric Oxide and Superoxide in Endothelial Layer of Intact Arteries
Published on: February 25, 2016
Nitric oxide modulates vascular inflammation and intimal hyperplasia in insulin resistance and the metabolic syndrome
Joel E Barbato1, Brian S Zuckerbraun, Marcus Overhaus
1Dept. of Surgery, Univ. of Pittsburgh, A1010 PUH, 200 Lothrop St., Pittsburgh, PA 15213, USA.
Abstract:
Type 2 diabetes mellitus (DM) and the metabolic syndrome, both characterized by insulin resistance, are associated with an accelerated form of atherosclerotic vascular disease and poor outcomes following vascular interventions. These vascular effects are thought to stem from a heightened inflammatory environment and reduced bioavailability of nitric oxide (NO). To better understand this process, we characterized the vascular injury response in the obese Zucker rat by examining the expression of adhesion molecules, the recruitment of inflammatory cells, and the development of intimal hyperplasia. We also evaluated the ability of exogenous NO to inhibit the sequela of vascular injury in the metabolic syndrome. Obese and lean Zucker rats underwent carotid artery balloon injury. ICAM-1 and P-selectin expression were increased following injury in the obese animals compared with the lean rats. The obese rats also responded with increased macrophage infiltration of the vascular wall as well as increased neointima formation compared with their lean counterparts (intima/media = 0.91 vs. 0.52, P = 0.001). After adenovirus-mediated inducible NO synthase (iNOS) gene transfer, ICAM-1, P-selectin, inflammatory cell influx, and oxidized low-density lipoprotein (LDL) receptor expression were all markedly reduced versus injury alone. iNOS gene transfer also significantly inhibited proliferative activity (54% and 73%; P < 0.05) and neointima formation (53% and 67%; P < 0.05) in lean and obese animals, respectively. The vascular injury response in the face of obesity and the metabolic syndrome is associated with increased adhesion molecule expression, inflammatory cell infiltration, oxidized LDL receptor expression, and proliferation. iNOS gene transfer is able to effectively inhibit this heightened injury response and reduce neointima formation in this proinflammatory environment.
Insights
Obesity and metabolic syndrome worsen vascular injury by increasing inflammation and cell adhesion. Inducible nitric oxide synthase (iNOS) gene transfer effectively reduced this response, highlighting its therapeutic potential for vascular disease.
Area of Science:
- Vascular Biology
- Metabolic Syndrome Research
- Gene Therapy
Background:
- Type 2 diabetes mellitus (DM) and metabolic syndrome are linked to insulin resistance, accelerated atherosclerosis, and poor vascular intervention outcomes.
- These vascular complications are associated with increased inflammation and reduced nitric oxide (NO) bioavailability.
Purpose of the Study:
- To investigate the vascular injury response in obese Zucker rats, focusing on adhesion molecules, inflammatory cell recruitment, and intimal hyperplasia.
- To evaluate the efficacy of exogenous nitric oxide (NO) in mitigating vascular injury sequelae within the context of metabolic syndrome.
Main Methods:
- Obese and lean Zucker rats underwent carotid artery balloon injury.
- Assessed expression of ICAM-1, P-selectin, inflammatory cell infiltration, and neointima formation.
- Utilized adenovirus-mediated inducible nitric oxide synthase (iNOS) gene transfer to evaluate its inhibitory effects.
Main Results:
- Obese rats exhibited increased ICAM-1 and P-selectin expression, greater macrophage infiltration, and significantly higher neointima formation post-injury compared to lean rats.
- iNOS gene transfer markedly reduced ICAM-1, P-selectin, inflammatory cell influx, and oxidized LDL receptor expression.
- iNOS gene transfer significantly inhibited proliferative activity and neointima formation in both lean and obese animals.
Conclusions:
- The vascular injury response in obesity and metabolic syndrome is characterized by heightened adhesion molecule expression, inflammatory cell infiltration, and proliferation.
- Inducible nitric oxide synthase (iNOS) gene transfer effectively counteracts this exaggerated injury response and reduces neointima formation in a pro-inflammatory environment.
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