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En Face Detection of Nitric Oxide and Superoxide in Endothelial Layer of Intact Arteries
Published on: February 25, 2016
Nifedipine prevents vascular endothelial dysfunction in a mouse model of obesity and type 2 diabetes, by improving
Eiichiro Yamamoto1, Taishi Nakamura, Keiichiro Kataoka
1Department of Pharmacology and Molecular Therapeutics, Kumamoto University Graduate School of Medical Sciences, 1-1-1 Honjyo, Kumamoto 860-8556, Japan.
Abstract:
The effect of calcium channel blockers (CCBs) on type 2 diabetes is still unclear. The present study was undertaken to examine the efficacy of nifedipine, a dihydropyridine CCB, on obesity, glucose intolerance and vascular endothelial dysfunction in db/db mice (a mouse model of obesity and type 2 diabetes). db/db mice, fed high-fat diet (HFD) were treated with vehicle, nifedipine (10 mg kg(-1) day(-1)) or hydralazine (5 mg kg(-1) day(-1)) for 4 weeks, and the protective effects were compared. Although nifedipine and hydralazine exerted similar blood pressure lowering in db/db mice, neither affected body weight, fat weight, and glucose intolerance of db/db mice. However, nifedipine, but not hydralazine, significantly improved vascular endothelial function in db/db mice, being accompanied by more attenuation of vascular superoxide by nifedipine than hydralazine. These protective effects of nifedipine were attributed to the attenuation of eNOS uncoupling as shown by the prevention of vascular endothelial nitric oxide synthase (eNOS) dimer disruption, and the prevention of dihydrofolate reductase (DHFR) downregulation, the key enzyme responsible for eNOS uncoupling. Moreover, nifedipine, but not hydralazine, significantly prevented the decreases in phosphorylation of vascular akt and eNOS in db/db mice. Our work provided the first evidence that nifedipine prevents vascular endothelial dysfunction, through the inhibition of eNOS uncoupling and the enhancement of eNOS phosphorylation, independently of blood pressure-lowering effect. We propose that nifedipine may be a promising therapeutic agent for cardiovascular complications in type 2 diabetes.
Insights
Nifedipine improved vascular function in type 2 diabetes models by reducing oxidative stress and enhancing nitric oxide production, independent of blood pressure effects. This suggests potential for treating diabetic cardiovascular complications.
Area of Science:
- Cardiovascular Research
- Endocrinology
- Pharmacology
Background:
- The impact of calcium channel blockers (CCBs) on type 2 diabetes remains uncertain.
- Obesity and type 2 diabetes are associated with vascular endothelial dysfunction.
Purpose of the Study:
- To investigate the efficacy of nifedipine, a dihydropyridine CCB, on obesity, glucose intolerance, and vascular endothelial dysfunction in a mouse model of type 2 diabetes (db/db mice).
Main Methods:
- db/db mice on a high-fat diet were treated with vehicle, nifedipine, or hydralazine for 4 weeks.
- Evaluated effects on body weight, fat weight, glucose intolerance, blood pressure, vascular endothelial function, superoxide levels, eNOS uncoupling, and Akt/eNOS phosphorylation.
Main Results:
- Nifedipine and hydralazine similarly lowered blood pressure but did not affect body weight or glucose intolerance.
- Nifedipine significantly improved vascular endothelial function and reduced vascular superoxide, unlike hydralazine.
- Nifedipine attenuated eNOS uncoupling by preventing DHFR downregulation and eNOS dimer disruption.
- Nifedipine preserved Akt and eNOS phosphorylation, suggesting enhanced nitric oxide signaling.
Conclusions:
- Nifedipine prevents vascular endothelial dysfunction in a type 2 diabetes model through eNOS uncoupling inhibition and enhanced eNOS phosphorylation, independent of its blood pressure-lowering action.
- Nifedipine shows promise as a therapeutic agent for cardiovascular complications associated with type 2 diabetes.
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