β-Adrenergic receptor antagonism in mice: a model for pediatric heart disease

Carmen C Sucharov1, Jamie G Hijmans, Rebecca D Sobus

  • 1Department of Medicine, Division of Cardiology, University of Colorado School of Medicine, Aurora, Colorado;

Insights

Pediatric heart failure lacks effective treatments. This study developed a novel mouse model, revealing that selective beta-1 receptor blockade benefits young and adult mice, unlike non-selective blockade.

Area of Science:

  • Cardiology
  • Pediatric Medicine
  • Pharmacology

Background:

  • Pediatric heart failure treatments mirror adult protocols but show poorer outcomes in children.
  • Age-related differences in heart failure pathophysiology and molecular mechanisms exist between children and adults.
  • A lack of animal models hinders pediatric cardiomyopathy research.

Purpose of the Study:

  • To develop a mouse model for pediatric heart disease.
  • To investigate the efficacy of beta-adrenergic receptor (β-AR) antagonism in this model.
  • To compare treatment responses between young and adult mice.

Main Methods:

  • Isoproterenol administration via osmotic minipump in young and adult mice.
  • Assessment of cardiac hypertrophy, molecular abnormalities (phospholamban phosphorylation, β-AR expression), and collagen expression.
  • Evaluation of nonselective and selective β-AR blockade effects.

Main Results:

  • Isoproterenol induced cardiac hypertrophy and molecular changes in both young and adult mice.
  • Nonselective β-AR blockade benefited adult mice but not young mice.
  • Selective β1-AR blockade was effective in both age groups.

Conclusions:

  • A novel mouse model for β-AR-mediated pediatric heart disease has been established.
  • Selective β1-AR blockade shows potential therapeutic benefits for pediatric heart conditions.
  • This model system facilitates further mechanistic studies in pediatric heart disease.

Related Concept Videos

Adrenergic Antagonists: Pharmacological Actions of β-Receptor Blockers01:27

Adrenergic Antagonists: Pharmacological Actions of β-Receptor Blockers

β-receptor blockers significantly impact the cardiovascular system by counteracting catecholamine-induced sympathetic responses. These medications decrease heart rate, contractility, and cardiac output, potentially leading to cardiac depression, life-threatening bradycardia, and death. Therapeutically, β-blockers function as mild antihypertensives and are utilized in treating angina pectoris and cardiac arrhythmias. However, nonselective β-blockers inhibit β2-receptors in bronchial smooth...
Adrenergic Antagonists: ɑ and β-Receptor Blockers01:31

Adrenergic Antagonists: ɑ and β-Receptor Blockers

Third-generation β-blockers, such as labetalol and carvedilol, represent a significant advancement in managing cardiovascular conditions. Unlike conventional β-blockers, which can induce peripheral vasoconstriction, third-generation drugs block α1 adrenoceptors. This promotes vasodilation through several mechanisms, such as increased nitric oxide production, inhibition of calcium ion entry, opening of potassium ion channels, and antioxidant action. Labetalol, for instance, is clinically...
Adrenergic Antagonists: Pharmacological Actions of ɑ-Receptor Blockers01:22

Adrenergic Antagonists: Pharmacological Actions of ɑ-Receptor Blockers

α-Adrenergic antagonists, known as α-blockers, exert their effects by inhibiting α-adrenoceptors, leading to specific physiological actions. α1-blockers and α2-blockers have distinct pharmacological actions and therapeutic applications.
α1-blockers: These drugs inhibit α1-adrenoceptors on smooth muscle cells, resulting in vasodilation. This vasodilation lowers blood pressure, making α1-blockers valuable in treating hypertension. Additionally, α1-blockers effectively address urinary obstruction...
Adrenergic Antagonists: Chemistry and Classification of β-Receptor Blockers01:25

Adrenergic Antagonists: Chemistry and Classification of β-Receptor Blockers

β-adrenergic antagonists, or β-blockers, modulate the sympathetic nervous system by targeting β-adrenoceptors and inhibiting catecholamine-mediated sympathetic responses. β-blockers differ in their adrenoceptor subtype affinity, lipophilicity, and α-blocking capabilities. The history of β-blocker development began with the prototype, dichloroisoprenaline, which exhibited partial agonist activity. As a result, propranolol was developed as a pure antagonist but nonselective agent, paving the way...
Adrenergic Receptors: ɑ Subtype01:31

Adrenergic Receptors: ɑ Subtype

Adrenoceptors are classified into α and ꞵ classes based on their potencies to catecholamine agonists. α-adrenoceptors show the following order of catecholamine potency:
Adrenaline ≥ Noradrenaline >> Isoprenaline
α-adrenoceptors are further divided into α1 and α2-adrenoceptors.
α1-Adrenoceptors: These receptors are located postsynaptically on the effector organs and cause constriction of smooth muscle mediated by activation of phospholipase C—inositol-1,4,5-trisphosphate...
Adrenergic Receptors: β Subtype01:26

Adrenergic Receptors: β Subtype

β-adrenoceptors have varied sensitivities towards adrenaline, noradrenaline, and isoprenaline. The order of agonist potency is as follows:
Isoprenaline > Adrenaline > Noradrenaline
Neurotransmitter binding to these receptors causes activation of adenylyl cyclase resulting in increased concentrations of cAMP and modulation of calcium ion channels within the cell. They are further classified into β1, β2, and β3 subtypes.
β1-adrenoceptors: β1-adrenoceptors have equal affinities for...