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Muscarinic acetylcholine receptor M2 (CHRM2) (CHRM2)

Target
CHRM2
Molecular classification
G protein-coupled receptor, Receptor, Rhodopsin-like GPCR
01

Overview

The Muscarinic acetylcholine receptor M2 is a G protein-coupled receptor (GPCR) predominantly found in the heart, smooth muscle, and central nervous system (UniProt) [11, 12]. In cardiac tissue, it mediates the parasympathetic effects of acetylcholine, primarily acting to decrease heart rate (negative chronotropy) and reduce conduction velocity through the atrioventricular node by coupling with Gi/o proteins to inhibit adenylyl cyclase and activate inwardly-rectifying potassium channels (Wikipedia) [4, 10, 16]. Beyond its cardiac role, the receptor acts as a presynaptic autoreceptor in the brain, regulating the release of acetylcholine and thereby influencing cognitive processes, thermoregulation, and pain perception (PubMed) [14, 17]. Dysregulation of M2 receptor signaling is implicated in a broad range of pathologies, including bradyarrhythmias, heart failure, Alzheimer's disease, and overactive bladder (NIH) [5, 13, 21]. Consequently, this receptor is a significant therapeutic target across multiple specialties; antagonists are used for respiratory and urological conditions, while agonists and allosteric modulators are explored for their potential in managing cardiovascular and neurological disorders (GlobalData) [2, 6, 18]. Medicinal compounds targeting this receptor range from non-selective antagonists like atropine to subtype-selective allosteric modulators currently in clinical development (ResearchGate) [6, 18].

Other names
Cholinergic receptor muscarinic 2M2 receptorHM2Muscarinic-2 receptorM2 muscarinic receptorAcetylcholine receptor M2
02

Mechanism of action

Drugs targeting the M2 receptor act as orthosteric agonists, antagonists, or allosteric modulators. Agonists bind the receptor to activate Gi/o protein signaling, which inhibits adenylyl cyclase (decreasing intracellular cAMP) and activates G protein-coupled inwardly-rectifying potassium channels, resulting in inhibitory physiological effects such as heart rate slowing (StatPearls) [9, 10]. Antagonists competitively block acetylcholine binding at the orthosteric site to prevent these parasympathetic effects, thereby increasing heart rate or facilitating smooth muscle relaxation in the lungs and bladder (IUPHAR) [8, 10, 13]. Positive allosteric modulators (PAMs) bind to a distinct site to enhance the receptor's sensitivity to endogenous acetylcholine, providing a mechanism to selectively increase parasympathetic tone in conditions like heart failure (ResearchGate) [6].

03

Biological functions

Signal transductionInhibition of adenylyl cyclaseRegulation of heart rateNeurotransmissionPresynaptic autoregulationSmooth muscle contractionThermoregulationAntinociception
04

Disease associations

Cardiovascular diseaseNeurodegenerative diseaseRespiratory diseasePsychiatric disorderBladder dysfunctionPain
05

Safety considerations

Bradycardia (with agonists)Tachycardia (with antagonists)Xerostomia (dry mouth)ConstipationUrinary retentionBlurred visionCognitive impairment and confusionIncreased risk of mortality in elderly patients with dementia-related psychosis
06

Interacting drugs

Atropine

13 more in the full profile.

07

Biomarkers

Heart rate variability (HRV)Sinus heart ratePR interval (ECG)Intracellular cAMP levelsPupillary diameter

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