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Published on: June 14, 2016
Changes of beta-adrenergic signaling in compensated human cardiac hypertrophy depend on the underlying disease
U Schotten1, K Filzmaier, B Borghardt
1Department of Cardiology, University Hospital Aachen, Germany. usch@pcserver.mk1.rwth-aachen.de
Insights
Cardiac hypertrophy involves beta-adrenoceptor downregulation. Different G protein changes occur in hypertrophic obstructive cardiomyopathy and aortic valve stenosis, preceding heart failure and independent of plasma catecholamines.
Area of Science:
- Cardiology
- Molecular Biology
- Physiology
Background:
- Beta-adrenergic signal transduction desensitization is key in heart failure.
- Limited data exists on beta-adrenergic system function in compensated cardiac hypertrophy.
Purpose of the Study:
- Investigate myocardial beta-adrenergic signaling in hypertrophic obstructive cardiomyopathy (HOCM) and aortic valve stenosis (AoSt).
- Characterize changes in beta-adrenoceptor density and G protein expression in these conditions.
Main Methods:
- Studied beta-adrenoceptor density using [(125)I]iodocyanopindolol binding.
- Assessed G protein alpha-subunit (G(s)alpha and Galpha(i-2)) expression via immunoblotting.
- Measured adenylyl cyclase stimulation by isoproterenol and plasma catecholamine levels.
Main Results:
- Reduced beta-adrenoceptor density observed in both HOCM and AoSt compared to nonfailing myocardium.
- HOCM showed unchanged G(s)alpha but increased Galpha(i-2); AoSt showed increased G(s)alpha but unchanged Galpha(i-2).
- Adenylyl cyclase stimulation by isoproterenol was reduced in HOCM, but not AoSt. Plasma catecholamines were normal.
Conclusions:
- Both HOCM and AoSt exhibit beta-adrenoceptor downregulation.
- Distinct G protein alterations accompany these hypertrophic states before symptomatic heart failure.
- Observed changes are not attributable to elevated plasma catecholamine levels.
Abstract:
In human heart failure, desensitization of the beta-adrenergic signal transduction has been reported to be one of the main pathophysiological alterations. However, data on the beta-adrenergic system in human compensated cardiac hypertrophy are very limited. Therefore, we studied the myocardial beta-adrenergic signaling in patients suffering from hypertrophic obstructive cardiomyopathy (HOCM, n = 9) or from aortic valve stenosis (AoSt, n = 8). beta-Adrenoceptor density determined by [(125)I]iodocyanopindolol binding was reduced in HOCM and AoSt compared with nonhypertrophied, nonfailing myocardium (NF) of seven organ donors. In HOCM the protein expression of stimulatory G protein alpha-subunit (G(s)alpha) measured by immunoblotting was unchanged, whereas the inhibitory G protein alpha-subunit (Galpha(i-2)) was increased. In contrast, in AoSt, Galpha(i-2) protein was unchanged, but G(s)alpha protein was increased. Adenylyl cyclase stimulation by isoproterenol was reduced in HOCM but not in AoSt. Plasma catecholamine levels were normal in all patients. In conclusion, both forms of hypertrophy are associated with beta-adrenoceptor downregulation but with different changes at the G protein level that occur before symptomatic heart failure due to progressive dilatation of the left ventricle develops and are not due to elevated plasma catecholamine levels.
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