Control of ventricular excitability by neurons of the dorsal motor nucleus of the vagus nerve
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Author(s)
Type
Journal Article
Abstract
Background
The central nervous origins of functional parasympathetic innervation of cardiac ventricles remain controversial.
Objective
This study aimed to identify a population of vagal preganglionic neurons that contribute to the control of ventricular excitability. An animal model of synuclein pathology relevant to Parkinson’s disease was used to determine whether age-related loss of the activity of the identified group of neurons is associated with changes in ventricular electrophysiology.
Methods
In vivo cardiac electrophysiology was performed in anesthetized rats in conditions of selective inhibition of the dorsal vagal motor nucleus (DVMN) neurons by pharmacogenetic approach and in mice with global genetic deletion of all family members of the synuclein protein.
Results
In rats anesthetized with urethane (in conditions of systemic beta-adrenoceptor blockade), muscarinic and neuronal nitric oxide synthase blockade confirmed the existence of a tonic parasympathetic control of cardiac excitability mediated by the actions of acetylcholine and nitric oxide. Acute DVMN silencing led to shortening of the ventricular effective refractory period (vERP), a lowering of the threshold for triggered ventricular tachycardia, and prolongation of the corrected QT (QTc) interval. Lower resting activity of the DVMN neurons in aging synuclein-deficient mice was found to be associated with vERP shortening and QTc interval prolongation.
Conclusion
Activity of the DVMN vagal preganglionic neurons is responsible for tonic parasympathetic control of ventricular excitability, likely to be mediated by nitric oxide. These findings provide the first insight into the central nervous substrate that underlies functional parasympathetic innervation of the ventricles and highlight its vulnerability in neurodegenerative diseases.
The central nervous origins of functional parasympathetic innervation of cardiac ventricles remain controversial.
Objective
This study aimed to identify a population of vagal preganglionic neurons that contribute to the control of ventricular excitability. An animal model of synuclein pathology relevant to Parkinson’s disease was used to determine whether age-related loss of the activity of the identified group of neurons is associated with changes in ventricular electrophysiology.
Methods
In vivo cardiac electrophysiology was performed in anesthetized rats in conditions of selective inhibition of the dorsal vagal motor nucleus (DVMN) neurons by pharmacogenetic approach and in mice with global genetic deletion of all family members of the synuclein protein.
Results
In rats anesthetized with urethane (in conditions of systemic beta-adrenoceptor blockade), muscarinic and neuronal nitric oxide synthase blockade confirmed the existence of a tonic parasympathetic control of cardiac excitability mediated by the actions of acetylcholine and nitric oxide. Acute DVMN silencing led to shortening of the ventricular effective refractory period (vERP), a lowering of the threshold for triggered ventricular tachycardia, and prolongation of the corrected QT (QTc) interval. Lower resting activity of the DVMN neurons in aging synuclein-deficient mice was found to be associated with vERP shortening and QTc interval prolongation.
Conclusion
Activity of the DVMN vagal preganglionic neurons is responsible for tonic parasympathetic control of ventricular excitability, likely to be mediated by nitric oxide. These findings provide the first insight into the central nervous substrate that underlies functional parasympathetic innervation of the ventricles and highlight its vulnerability in neurodegenerative diseases.
Date Issued
2015-06-05
Date Acceptance
2015-06-01
Citation
Nutrition Metabolism and Cardiovascular Diseases, 2015, 12 (11), pp.2285-2293
ISSN
1590-3729
Publisher
Elsevier
Start Page
2285
End Page
2293
Journal / Book Title
Nutrition Metabolism and Cardiovascular Diseases
Volume
12
Issue
11
Copyright Statement
This is an open access article under the CC BY
license (http://creativecommons.org/licenses/by/4.0/).
license (http://creativecommons.org/licenses/by/4.0/).
License URL
Subjects
Science & Technology
Life Sciences & Biomedicine
Cardiac & Cardiovascular Systems
Endocrinology & Metabolism
Nutrition & Dietetics
Cardiovascular System & Cardiology
Arrhythmia
Atrioventricular
Brain
Cardiac electrophysiology
Nitric oxide
parasympathetic
Parkinson's disease
Vagus nerve
Ventricle
PARKINSONS-DISEASE
MYOCARDIAL-INFARCTION
CARDIAC-DISEASE
QT INTERVALS
HEART
FIBRILLATION
STIMULATION
SYSTEM
RATS
DOGS
Parkinson’s disease
Animals
Cardiac Electrophysiology
Disease Models, Animal
Heart Ventricles
Male
Mice
Mice, Inbred C57BL
Nitric Oxide Synthase Type I
Parasympathectomy
Random Allocation
Rats
Rats, Sprague-Dawley
Statistics, Nonparametric
Vagus Nerve
Vagus Nerve Stimulation
Cardiovascular System & Hematology
1102 Cardiovascular Medicine And Haematology
0903 Biomedical Engineering
11 Medical And Health Sciences
Publication Status
Published