Interaction between neuronal nitric oxide synthase and inhibitory G protein activity in heart rate regulation in conscious mice.
Open Access
- 1 October 1998
- journal article
- Published by American Society for Clinical Investigation in Journal of Clinical Investigation
- Vol. 102 (7) , 1279-1285
- https://doi.org/10.1172/jci2843
Abstract
Nitric oxide (NO) synthesized within mammalian sinoatrial cells has been shown to participate in cholinergic control of heart rate (HR). However, it is not known whether NO synthesized within neurons plays a role in HR regulation. HR dynamics were measured in 24 wild-type (WT) mice and 24 mice in which the gene for neuronal NO synthase (nNOS) was absent (nNOS-/- mice). Mean HR and HR variability were compared in subsets of these animals at baseline, after parasympathetic blockade with atropine (0.5 mg/kg i.p.), after beta-adrenergic blockade with propranolol (1 mg/kg i.p.), and after combined autonomic blockade. Other animals underwent pressor challenge with phenylephrine (3 mg/kg i.p.) after beta-adrenergic blockade to test for a baroreflex-mediated cardioinhibitory response. The latter experiments were then repeated after inactivation of inhibitory G proteins with pertussis toxin (PTX) (30 microgram/kg i.p.). At baseline, nNOS-/- mice had higher mean HR (711+/-8 vs. 650+/-8 bpm, P = 0.0004) and lower HR variance (424+/-70 vs. 1,112+/-174 bpm2, P = 0.001) compared with WT mice. In nNOS-/- mice, atropine administration led to a much smaller change in mean HR (-2+/-9 vs. 49+/-5 bpm, P = 0.0008) and in HR variance (64+/-24 vs. -903+/-295 bpm2, P = 0.02) than in WT mice. In contrast, propranolol administration and combined autonomic blockade led to similar changes in mean HR between the two groups. After beta-adrenergic blockade, phenylephrine injection elicited a fall in mean HR and rise in HR variance in WT mice that was partially attenuated after treatment with PTX. The response to pressor challenge in nNOS-/- mice before PTX administration was similar to that in WT mice. However, PTX-treated nNOS-/- mice had a dramatically attenuated response to phenylephrine. These findings suggest that the absence of nNOS activity leads to reduced baseline parasympathetic tone, but does not prevent baroreflex-mediated cardioinhibition unless inhibitory G proteins are also inactivated. Thus, neuronally derived NO and cardiac inhibitory G protein activity serve as parallel pathways to mediate autonomic slowing of heart rate in the mouse.Keywords
This publication has 37 references indexed in Scilit:
- The role of nitric oxide and cGMP in platelet adhesion to vascular endotheliumPublished by Elsevier ,2005
- Nitric oxide in excitable tissues: physiological roles and disease.Journal of Clinical Investigation, 1997
- Nitric oxide synthase-containing neurones and nerve fibres within cardiac ganglia of rat and guinea-pig: an electron-microscopic immunocytochemical studyCell and tissue research, 1996
- A cellular mechanism for nitric oxide-mediated cholinergic control of mammalian heart rate.The Journal of general physiology, 1995
- Role of nitric oxide in parasympathetic modulation of beta-adrenergic myocardial contractility in normal dogs.Journal of Clinical Investigation, 1995
- Role of nitric oxide in regulation of baroreceptor reflexJournal of the Autonomic Nervous System, 1994
- Patterns of beat-to-beat heart rate variability in advanced heart failureAmerican Heart Journal, 1992
- Regulation of cardiac ion channels by catecholamines, acetylcholine and second messenger systemsProgress in Biophysics and Molecular Biology, 1988
- Assessment of autonomic regulation in chronic congestive heart failure by heart rate spectral analysisThe American Journal of Cardiology, 1988
- Power Spectrum Analysis of Heart Rate Fluctuation: A Quantitative Probe of Beat-to-Beat Cardiovascular ControlScience, 1981