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Antiadrenergic effects of adenosine in pressure overload hypertrophy
T E Meyer1, E S Chung, S Perlini
1Department of Medicine, University of Massachusetts (Worcester), USA. meyert@ummhc.org
Insights
In pressure overload hypertrophy, adenosine
Area of Science:
- Cardiovascular Physiology
- Cardiac Metabolism
- Pharmacology
Background:
- Pressure overload hypertrophy (POH) is a cardiac condition.
- Adenosine plays a role in cardiac adrenergic signaling.
- Altered adenosine signaling may contribute to heart dysfunction.
Purpose of the Study:
- To investigate adenosine's antiadrenergic effects in POH.
- To determine if adenosine receptor function is impaired in POH.
- To assess the impact of adenosine signaling on cardiac contractility and calcium handling in POH.
Main Methods:
- Rats underwent suprarenal aortic banding to induce POH.
- Adenosine and inosine levels were measured in epicardial and coronary effluent.
- Contractile responses to beta-adrenergic stimulation were assessed.
- Adenosine and selective A(1) and A(2A) receptor agonists/antagonists were used.
- Isolated myocytes were used to measure intracellular calcium transients.
Main Results:
- Adenosine and inosine levels increased in compensated POH but decreased in heart failure.
- Antiadrenergic effects of adenosine were diminished in POH, correlating with dilation and dysfunction.
- Adenosine's sustained antiadrenergic effect was lost in decompensated hearts.
- A(2A) receptor antagonism did not restore adenosine sensitivity in hypertrophied hearts.
- Myocytes from hypertrophied hearts showed impaired suppression of calcium transients.
Conclusions:
- Myocardial adenosine levels fluctuate during POH progression.
- Adenosine's antiadrenergic actions via A(1) receptors are reduced in POH.
- Diminished adenosine signaling may increase vulnerability to sympathetic overactivity in hypertrophied hearts.
Abstract:
In the present study, we sought to evaluate whether the antiadrenergic action of adenosine in the heart is altered in pressure overload hypertrophy produced in rats by suprarenal aortic banding. Epicardial and coronary effluent adenosine and inosine concentrations and release were significantly elevated in compensated pressure overload hypertrophy but not in hearts with left ventricular failure. In pressure overload hearts, the contractile response to beta-adrenergic stimulation was less inhibited by incremental concentrations of either adenosine or the selective A(1) receptor agonist chloro-N:(6)-cyclopentyl adenosine than in controls. Furthermore, the extent of desensitization to the antiadrenergic actions of adenosine in pressure overload hypertrophy appeared to be proportional to the extent of chamber dilation and dysfunction. A 60-minute infusion of adenosine produced a sustained antiadrenergic effect that lasted up to 45 minutes after the infusion was terminated in both controls and hearts with compensated hypertrophy. This effect was not observed in the decompensated left ventricular failure group. Subsequent infusion with adenosine of the A(2A) receptor antagonist 8-(3-chlorostyryl)-caffeine to counteract the proadrenergic effect of A(2A) receptor stimulation did not alter the decreased sensitivity to the antiadrenergic actions of adenosine in hypertrophied hearts. Finally, isolated myocytes from hypertrophied hearts demonstrated a decreased ability to suppress isoproterenol-elicited increases in [Ca(2+)](i) transients in the presence of adenosine and the A(2A) receptor antagonist compared with myocytes from control hearts. Myocardial adenosine concentrations increase during the compensated phase of pressure overload hypertrophy but then decrease when there is evidence of decompensation. The antiadrenergic actions of adenosine transduced via the myocardial A(1) receptor are diminished in pressure overload hypertrophied hearts. These factors may render these hearts more vulnerable to the detrimental effects of chronically increased sympathetic activity.
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