Key result
Gene-targeted mice lacking endogenous norepinephrine and epinephrine (dbh-/-) showed increased basal contractility and enhanced beta-adrenergic responsiveness with reduced betaARK1 activity.
Mice lacking endogenous norepinephrine and epinephrine exhibit enhanced cardiac contractility and decreased betaARK1 levels, providing a valuable model to study the role of catecholamines in heart failure pathogenesis.
Hypothesis-generating for catecholamine modulation in HF; extends betaARK1 observations but leaves open human translation.
BACKGROUND: Elevated circulating norepinephrine (NE) has been implicated in causing the profound beta-adrenergic receptor (betaAR) downregulation and receptor uncoupling that are characteristic of end-stage human dilated cardiomyopathy, a process mediated in part by increased levels of beta-adrenergic receptor kinase (betaARK1). To explore whether chronic sustained NE stimulation is a primary stimulus that promotes deterioration in cardiac signaling, we characterized a gene-targeted mouse in which activation of the sympathetic nervous system cannot lead to an elevation in plasma NE and epinephrine. METHODS AND RESULTS: Gene-targeted mice that lack dopamine beta-hydroxylase (dbh-/-), the enzyme needed to convert dopamine to NE, were created by homologous recombination. In vivo contractile response to the beta1AR agonist dobutamine, measured by a high-fidelity left ventricular micromanometer, was enhanced in mice lacking the dbh gene. In unloaded adult myocytes isolated from dbh-/- mice, basal contractility was significantly increased compared with control cells. Furthermore, the increase in betaAR responsiveness and enhanced cellular contractility were associated with a significant reduction in activity and protein level of betaARK1 and increased high-affinity agonist binding without changes in betaAR density or G-protein levels. CONCLUSIONS: Mice that lack the ability to generate NE or epinephrine show increased contractility associated primarily with a decrease in the level of betaARK1 protein and kinase activity. This animal model will be valuable in testing whether NE is required for the pathogenesis of heart failure through mating strategies that cross the dbh-/- mouse into genetically engineered models of heart failure.
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Cho et al. (1999) studied Heart failure pathogenesis model. Dopamine beta-hydroxylase (dbh) gene knockout vs. Control mice was evaluated on In vivo contractile response and basal contractility. Gene-targeted mice lacking endogenous norepinephrine and epinephrine (dbh-/-) showed increased basal contractility and enhanced beta-adrenergic responsiveness with reduced betaARK1 activity.
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