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Updated: May 21, 2026

Detection of G Protein-coupled Receptor Expression in Mouse Vagal Afferent Neurons using Multiplex In Situ Hybridization
Published on: September 20, 2021
RGS Proteins in Heart: Brakes on the Vagus
Adele Stewart1, Jie Huang, Rory A Fisher
1Department of Pharmacology, Carver College of Medicine, University of Iowa Iowa City, IA, USA.
Abstract:
It has been nearly a century since Otto Loewi discovered that acetylcholine (ACh) release from the vagus produces bradycardia and reduced cardiac contractility. It is now known that parasympathetic control of the heart is mediated by ACh stimulation of G(i/o)-coupled muscarinic M2 receptors, which directly activate G protein-coupled inwardly rectifying potassium (GIRK) channels via Gβγ resulting in membrane hyperpolarization and inhibition of action potential (AP) firing. However, expression of M2R-GIRK signaling components in heterologous systems failed to recapitulate native channel gating kinetics. The missing link was identified with the discovery of regulator of G protein signaling (RGS) proteins, which act as GTPase-activating proteins to accelerate the intrinsic GTPase activity of Gα resulting in termination of Gα- and Gβγ-mediated signaling to downstream effectors. Studies in mice expressing an RGS-insensitive Gα(i2) mutant (G184S) implicated endogenous RGS proteins as key regulators of parasympathetic signaling in heart. Recently, two RGS proteins have been identified as critical regulators of M2R signaling in heart. RGS6 exhibits a uniquely robust expression in heart, especially in sinoatrial (SAN) and atrioventricular nodal regions. Mice lacking RGS6 exhibit increased bradycardia and inhibition of SAN AP firing in response to CCh as well as a loss of rapid activation and deactivation kinetics and current desensitization for ACh-induced GIRK current (I(KACh)). Similar findings were observed in mice lacking RGS4. Thus, dysregulation in RGS protein expression or function may contribute to pathologies involving aberrant electrical activity in cardiac pacemaker cells. Moreover, RGS6 expression was found to be up-regulated in heart under certain pathological conditions, including doxorubicin treatment, which is known to cause life-threatening cardiotoxicity and atrial fibrillation in cancer patients. On the other hand, increased vagal tone may be cardioprotective in heart failure where acetylcholinesterase inhibitors and vagal stimulation have been proposed as potential therapeutics. Together, these studies identify RGS proteins, especially RGS6, as new therapeutic targets for diseases such as sick sinus syndrome or other maladies involving abnormal autonomic control of the heart.
Insights
Regulator of G protein signaling (RGS) proteins, particularly RGS6, are crucial for regulating heart rate by controlling acetylcholine signaling. Their dysfunction may lead to cardiac arrhythmias, highlighting them as potential therapeutic targets.
Area of Science:
- Cardiovascular physiology
- Molecular pharmacology
- Autonomic nervous system regulation
Background:
- Parasympathetic control of heart rate involves acetylcholine (ACh) activating muscarinic M2 receptors (M2R), leading to potassium channel (GIRK) opening and reduced firing.
- Previous studies using heterologous systems failed to replicate native M2R-GIRK channel kinetics.
- Regulator of G protein signaling (RGS) proteins were identified as key regulators of G protein signaling termination.
Purpose of the Study:
- To investigate the role of RGS proteins, specifically RGS6 and RGS4, in regulating M2R-GIRK channel function in the heart.
- To understand the impact of RGS protein dysregulation on cardiac electrical activity and potential disease pathology.
Main Methods:
- Utilized knockout mouse models lacking RGS6 or RGS4.
- Administered carbachol (CCh) to assess bradycardia and sinoatrial node (SAN) action potential firing.
- Measured acetylcholine-induced GIRK current (I(KACh)) kinetics and desensitization.
Main Results:
- Mice lacking RGS6 showed exaggerated bradycardia and SAN inhibition in response to CCh.
- RGS6 deficiency resulted in altered activation/deactivation kinetics and desensitization of I(KACh).
- Similar effects on cardiac function were observed in RGS4-deficient mice.
Conclusions:
- RGS proteins, especially RGS6, are critical for the proper kinetics and regulation of ACh-mediated cardiac M2R-GIRK signaling.
- Dysregulation of RGS proteins can contribute to cardiac arrhythmias and aberrant pacemaker cell activity.
- RGS proteins represent potential therapeutic targets for conditions involving abnormal autonomic control of the heart, such as sick sinus syndrome.
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