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Published on: August 29, 2012
Protection of the vascular endothelium in experimental situations
Ružena Sotníková1, Jana Nedelčevová, Jana Navarová
1Institute of Experimental Pharmacology & Toxicology, Slovak Academy of Sciences, Bratislava, Slovakia.
Abstract:
One of the factors proposed as mediators of vascular dysfunction observed in diabetes is the increased generation of reactive oxygen species (ROS). This provides support for the use of antioxidants as early and appropriate pharmacological intervention in the development of late diabetic complications. In streptozotocin (STZ)-induced diabetes in rats we observed endothelial dysfuction manifested by reduced endothelium-dependent response to acetylcholine of the superior mesenteric artery (SMA) and aorta, as well as by increased endothelaemia. Changes in endothelium-dependent relaxation of SMA were induced by injury of the nitric oxide radical (·NO)-signalling pathway since the endothelium-derived hyperpolarising factor (EDHF)-component of relaxation was not impaired by diabetes. The endothelial dysfunction was accompanied by decreased ·NO bioavailabity as a consequence of reduced activity of eNOS rather than its reduced expression. The results obtained using the chemiluminiscence method (CL) argue for increased oxidative stress and increased ROS production. The enzyme NAD(P)H-oxidase problably participates in ROS production in the later phases of diabetes. Oxidative stress was also connected with decreased levels of reduced glutathione (GSH) in the early phase of diabetes. After 10 weeks of diabetes, adaptational mechanisms probably took place because GSH levels were not changed compared to controls. Antioxidant properties of SMe1EC2 found in vitro were partly confirmed in vivo. Administration of SMe1EC2 protected endothelial function. It significantly decreased endothelaemia of diabetic rats and improved endothelium-dependent relaxation of arteries, slightly decreased ROS-production and increased bioavailability of ·NO in the aorta. Further studies with higher doses of SMe1EC2 may clarify the mechanism of its endothelium-protective effect in vivo.
Insights
Diabetic vascular dysfunction involves increased reactive oxygen species (ROS). The antioxidant SMe1EC2 protected endothelial function in diabetic rats by reducing ROS and improving nitric oxide (·NO) bioavailability.
Area of Science:
- Biomedical Sciences
- Cardiovascular Research
- Diabetology
Background:
- Vascular dysfunction in diabetes is linked to increased reactive oxygen species (ROS) generation.
- Antioxidants are proposed for managing diabetic complications.
- Endothelial dysfunction is a hallmark of diabetes, affecting nitric oxide (·NO) signaling.
Purpose of the Study:
- To investigate the role of oxidative stress in diabetic vascular dysfunction.
- To evaluate the efficacy of the antioxidant SMe1EC2 in ameliorating endothelial dysfunction in a rat model of diabetes.
Main Methods:
- Streptozotocin (STZ)-induced diabetes in rats.
- Assessment of endothelium-dependent relaxation in superior mesenteric artery (SMA) and aorta.
- Measurement of nitric oxide (·NO) bioavailability and ROS production using chemiluminescence (CL).
- Evaluation of glutathione (GSH) levels.
- Administration of SMe1EC2 and assessment of its protective effects.
Main Results:
- Diabetic rats exhibited endothelial dysfunction, reduced ·NO bioavailability, increased ROS production, and decreased GSH levels.
- SMe1EC2 administration improved endothelium-dependent relaxation, reduced endothelaemia, decreased ROS, and increased ·NO bioavailability in diabetic rats.
- NAD(P)H-oxidase is implicated in ROS production during diabetes.
Conclusions:
- Increased oxidative stress and impaired ·NO signaling contribute to diabetic vascular dysfunction.
- SMe1EC2 demonstrates in vivo antioxidant and endothelium-protective properties.
- Further research is needed to elucidate the precise mechanisms of SMe1EC2's protective effects.

