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Published on: January 19, 2020
Differential modulation by vascular nitric oxide synthases of the ethanol-evoked hypotension and autonomic
Mahmoud M El-Mas1, Ming Fan, Abdel A Abdel-Rahman
1Department of Pharmacology and Toxicology, School of Medicine, East Carolina University, Greenville, NC 27834, USA.
Abstract:
We recently reported that chronic exposure to ethanol lowers blood pressure (BP) via altering cardiac contractility and autonomic control in female rats. In this investigation we conducted pharmacological and molecular studies to elucidate the role of constitutive and inducible nitric oxide synthase (NOS) in these hemodynamic effects of ethanol. Changes caused by selective inhibition of eNOS [N(5)-(1-iminoethyl)-l-ornithine; l-NIO], nNOS (N(ω)-propyl-l-arginine; NPLA), or iNOS (1400W) in BP, heart rate (HR), myocardial contractility index (dP/dt(max)), and power spectral indices of hemodynamic variability were evaluated in telemetered female rats receiving ethanol (5%, w/v) or control liquid diet for 8 weeks. Ethanol increased plasma nitrite/nitrate (NOx) and enhanced the phosphorylation of eNOS and nNOS, but not iNOS, in the tail artery. Ethanol also reduced BP, +dP/dt(max), low-frequency bands of interbeat intervals (IBI(LF), 0.25-0.75 Hz) and IBI(LF/HF) ratio while high-frequency bands (IBI(HF), 0.75-3 Hz) were increased, suggesting parasympathetic overactivity. l-NIO (20 mg/kg i.p.) caused greater increases in BP in control than in ethanol-fed rats but elicited similar reductions in IBI(LF/HF) and +dP/dt(max) both groups. NPLA (1 mg/kg i.p.) caused minimal effects in control rats but exacerbated the reductions in BP, +dP/dt(max), and IBI(LF/HF) in ethanol-fed rats. No hemodynamic modifications were caused by 1400W (5 mg/kg i.p.) in either rat group. Together, these findings suggest that nNOS acts tonically to offset the detrimental cardiovascular actions of ethanol in female rats, and the enhanced vascular NO bioavailability may explain the blunted l-NIO evoked pressor response in ethanol-fed rats.
Insights
Chronic ethanol consumption in female rats lowers blood pressure by affecting cardiac function. Nitric oxide synthase (NOS) enzymes, particularly nNOS, play a key role in mitigating these detrimental cardiovascular effects.
Area of Science:
- Cardiovascular Physiology
- Pharmacology
- Molecular Biology
Background:
- Chronic ethanol intake is known to alter blood pressure and cardiac function.
- The role of nitric oxide synthase (NOS) isoforms in ethanol's hemodynamic effects requires further elucidation.
Purpose of the Study:
- To investigate the involvement of endothelial (eNOS), neuronal (nNOS), and inducible (iNOS) nitric oxide synthase in the cardiovascular adaptations to chronic ethanol exposure in female rats.
Main Methods:
- Pharmacological inhibition of NOS isoforms (l-NIO, NPLA, 1400W) in telemetered female rats chronically fed ethanol or a control diet.
- Evaluation of hemodynamic parameters including blood pressure, heart rate, myocardial contractility, and heart rate variability.
Main Results:
- Ethanol consumption reduced blood pressure, cardiac contractility, and altered heart rate variability, indicating parasympathetic overactivity.
- Selective inhibition of nNOS (NPLA) exacerbated ethanol-induced cardiovascular depression.
- Inhibition of eNOS (l-NIO) showed a blunted pressor response in ethanol-fed rats, suggesting increased vascular nitric oxide bioavailability.
Conclusions:
- Neuronal nitric oxide synthase (nNOS) tonically counteracts the adverse cardiovascular effects of chronic ethanol exposure in female rats.
- Enhanced vascular nitric oxide production contributes to the blunted pressor response observed after eNOS inhibition in ethanol-fed rats.
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