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Alpha1-adrenergic receptors prevent a maladaptive cardiac response to pressure overload
Timothy D O'Connell1, Philip M Swigart, M C Rodrigo
1Cardiology Division, San Francisco Veterans Affairs Medical Center, San Francisco, California 94121, USA.
Insights
Alpha1-adrenergic receptor (alpha1-AR) signaling is essential for cardiac adaptation to pressure overload. Loss of alpha1-ARs worsens heart failure by increasing fibrosis and apoptosis, suggesting clinical concerns for alpha1-antagonist use.
Area of Science:
- Cardiology
- Molecular Biology
- Pharmacology
Background:
- Alpha1-adrenergic receptor (alpha1-AR) antagonists were linked to increased heart failure in clinical trials.
- The specific mechanisms behind this adverse effect remain unclear.
Purpose of the Study:
- To investigate the role of cardiac alpha1-AR subtypes (alpha 1A and alpha 1B) in pressure overload-induced heart failure.
- To determine if alpha1-AR signaling is necessary for cardiac adaptation.
Main Methods:
- Generated double knockout (KO) mice lacking Adra1a and Adra1b genes in the heart.
- Subjected mice to transverse aortic constriction (TAC) to induce cardiac pressure overload.
- Assessed survival, cardiac function, myocyte apoptosis, fibrosis, and gene expression.
Main Results:
- KO mice showed reduced survival (60%) and impaired cardiac function (lower ejection fraction, larger end-diastolic volumes) after TAC compared to wild-type (WT) mice.
- KO hearts exhibited increased interstitial fibrosis, apoptosis, and failed induction of fetal genes post-TAC.
- Isolated KO myocytes were more prone to apoptosis and showed beta-adrenergic receptor (beta-AR) desensitization.
Conclusions:
- Alpha1-AR deletion exacerbates dilated cardiomyopathy following pressure overload through multiple mechanisms.
- Alpha1-signaling is crucial for the heart's adaptive response to stress.
- Adverse cardiac effects of alpha1-antagonists in patients may stem from the loss of myocyte alpha1-signaling.
Abstract:
An alpha1-adrenergic receptor (alpha1-AR) antagonist increased heart failure in the Antihypertensive and Lipid-Lowering Treatment to Prevent Heart Attack Trial (ALLHAT), but it is unknown whether this adverse result was due to alpha1-AR inhibition or a nonspecific drug effect. We studied cardiac pressure overload in mice with double KO of the 2 main alpha1-AR subtypes in the heart, alpha 1A (Adra1a) and alpha 1B (Adra1b). At 2 weeks after transverse aortic constriction (TAC), KO mouse survival was only 60% of WT, and surviving KO mice had lower ejection fractions and larger end-diastolic volumes than WT mice. Mechanistically, final heart weight and myocyte cross-sectional area were the same after TAC in KO and WT mice. However, KO hearts after TAC had increased interstitial fibrosis, increased apoptosis, and failed induction of the fetal hypertrophic genes. Before TAC, isolated KO myocytes were more susceptible to apoptosis after oxidative and beta-AR stimulation, and beta-ARs were desensitized. Thus, alpha1-AR deletion worsens dilated cardiomyopathy after pressure overload, by multiple mechanisms, indicating that alpha1-signaling is required for cardiac adaptation. These results suggest that the adverse cardiac effects of alpha1-antagonists in clinical trials are due to loss of alpha1-signaling in myocytes, emphasizing concern about clinical use of alpha1-antagonists, and point to a revised perspective on sympathetic activation in heart failure.
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