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Updated: Jul 5, 2026

Myocardial Infarction and Functional Outcome Assessment in Pigs
Published on: April 25, 2014
Effects of beta-adrenergic blockade on papillary muscle function and the beta-adrenergic receptor system in
A L Warner1, K L Bellah, T E Raya
1Department of Internal Medicine, Tucson Veterans Administration Medical Center, AZ 85723.
Insights
Beta-adrenergic receptor blockade with propranolol improved heart muscle function and beta-adrenergic receptor density in rats with myocardial infarction (MI). However, it did not restore adenylate cyclase activity, suggesting a primary defect in this enzyme.
Area of Science:
- Cardiology
- Pharmacology
- Molecular Biology
Background:
- Beta-adrenergic receptor blockade is known to improve hemodynamics and beta-adrenergic receptor-adenylate cyclase function in idiopathic dilated cardiomyopathy.
- Ischemic heart failure presents a model to study the effects of beta-adrenergic receptor blockade on the beta-adrenergic receptor system and myocardial function.
Purpose of the Study:
- To investigate the impact of beta-adrenergic receptor blockade on the beta-adrenergic receptor system and myocardial function in a rat model of compensated ischemic heart failure.
Main Methods:
- Examined the effects of propranolol on beta-adrenergic receptor-adenylate cyclase system and papillary muscle isometric function in rats post-coronary artery ligation.
- Assessed developed tension, rate of tension rise/fall, beta-adrenergic receptor density (Bmax) using [125I]iodocyanopindolol (ICYP) binding, and adenylate cyclase activity.
- Stimulated adenylate cyclase with isoproterenol, guanyl-5'-imidodiphosphate (GppNHp), forskolin, and manganese.
Main Results:
- Myocardial infarction (MI) in untreated rats led to decreased developed tension, impaired response to isoproterenol, reduced beta-adrenergic receptor density, and depressed adenylate cyclase activity.
- Propranolol treatment in MI rats improved basal developed tension and peak rate of tension rise, and normalized beta-adrenergic receptor density.
- Despite improvements in basal function and receptor density, propranolol did not improve adenylate cyclase activity or isoproterenol-stimulated muscle function.
Conclusions:
- Large myocardial infarction in rats impairs papillary muscle function, reduces beta-adrenergic receptors, and decreases adenylate cyclase activity in noninfarcted myocardium.
- Propranolol treatment enhances basal cardiac function and beta-adrenergic receptor density post-MI but fails to improve adenylate cyclase activity or stimulated function.
- A primary defect in adenylate cyclase function likely persists in ischemic heart failure, even with receptor upregulation induced by propranolol.
Background:
beta-Adrenergic receptor blockade has been reported to improve hemodynamics and beta-adrenergic receptor-adenylate cyclase function in idiopathic dilated cardiomyopathy. The purpose of this study was to determine the effects of beta-adrenergic receptor blockade on the beta-adrenergic receptor system and myocardial function in a model of compensated ischemic heart failure.
Methods And Results:
We examined the effects of propranolol treatment on the beta-adrenergic receptor-adenylate cyclase system and isolated papillary muscle isometric function in noninfarcted left ventricular myocardium in rats after coronary artery ligation. In untreated rats with large myocardial infarction (MI), developed tension (DT) (3.0 +/- 0.7 versus 5.1 +/- 1.1 g/mm2), peak rate of tension rise (+dT/dt) (40.3 +/- 9.5 versus 71.2 +/- 12.0 g/mm2/sec), and peak rate of tension fall (-dT/dt) (24.4 +/- 5.0 versus 38.2 +/- 6.0 g/mm2/sec) were decreased (p < 0.05). In addition, DT, +dT/dt, and -dT/dt of untreated MI rats demonstrated an impaired response to isoproterenol stimulation compared with controls. beta-Adrenergic receptor density (Bmax) measured by [125I]iodocyanopindolol (ICYP) binding was decreased 23% after infarction (9.3 +/- 0.6 versus 12.0 +/- 1.8 fmol/mg protein [prot]) (p < 0.05); however, the dissociation constant (Kd) for ICYP was not changed (24.1 +/- 5.7 versus 33.2 +/- 12.1 pM). Adenylate cyclase activity in the presence of 10(-2) M MgCl2 was reduced (p < 0.05) in MI rats (30.3 +/- 10.8 versus 45.9 +/- 12.5 pmol cAMP/min/mg prot). Maximal isoproterenol (52.5 +/- 7.3 versus 79.9 +/- 10.0 pmol cAMP/min/mg prot), guanyl-5'-imidodiphosphate (GppNHp) (95 +/- 8 versus 141 +/- 25 pmol cAMP/min/mg prot) and forskolin (503 +/- 76 versus 753 +/- 157 pmol cAMP/min/mg prot) stimulation of adenylate cyclase was also decreased (p < 0.05). In addition, manganese-stimulated adenylate cyclase activity was depressed (p < 0.05) in MI rats compared with controls (23.5 +/- 2.8 versus 52.1 +/- 9.0 pmol cAMP/min/mg prot). Chronic propranolol treatment in MI rats improved DT (4.1 +/- 0.9 versus 3.0 +/- 0.7 g/mm2) and +dT/dt (54.4 +/- 11.3 versus 40.5 +/- 9.5 g/mm2/sec) (p < 0.05); however, isoproterenol-stimulated isometric function remained impaired. Propranolol treatment normalized Bmax (11.9 +/- 1.7 versus 9.3 +/- 0.6 fmol/mg prot) (p < 0.05), whereas adenylate cyclase activity remained depressed.
Conclusions:
After large MI in rats, there is impaired papillary muscle function with decreased beta-adrenergic receptors and adenylate cyclase activity in the noninfarcted myocardium. Propranolol treatment improved basal isometric muscle function and beta-adrenergic receptor density in rats after myocardial infarction but did not improve adenylate cyclase activity or isoproterenol-stimulated muscle function. These data suggest that there is a primary defect in adenylate cyclase function that persists despite upregulation of receptors with propranolol treatment.
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