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Published on: February 10, 2013
Regulation of cardiac adrenomedullin in heart failure
M Jougasaki1, J A Grantham, M M Redfield
1Cardiorenal Research Laboratory, Division of Cardiovascular Diseases, Mayo Clinic and Foundation, Rochester, MN 55905, USA. jougasaki@mayo.edu
Insights
Angiotensin converting enzyme (ACE) inhibition reversed elevated cardiac Adrenomedullin (ADM) in experimental heart failure. This peptide is a marker for ventricular hypertrophy in congestive heart failure (CHF).
Area of Science:
- Cardiovascular Physiology
- Molecular Cardiology
- Pharmacology
Background:
- Adrenomedullin (ADM) is elevated in congestive heart failure (CHF) and may be stimulated by angiotensin II.
- Cardiac ADM production and secretion by myocytes and fibroblasts are implicated in CHF pathogenesis.
Purpose of the Study:
- To investigate cardiac Adrenomedullin (ADM) in experimental CHF.
- To test if angiotensin converting enzyme (ACE) inhibition modulates cardiac ADM in CHF.
Main Methods:
- Experimental CHF induced by rapid ventricular pacing in dogs.
- Assessed cardiac ADM by radioimmunoassay, immunohistochemistry, in situ hybridization, and Northern blot.
- Evaluated effects of ACE inhibition on ventricular and atrial ADM.
Main Results:
- Ventricular ADM concentrations and gene expression increased in CHF and were normalized by ACE inhibition.
- Ventricular ADM gene expression localized to myocytes and correlated with left ventricular mass index.
- Atrial ADM and plasma ADM levels in CHF were unaffected by ACE inhibition.
Conclusions:
- Circulating and ventricular ADM are activated in pacing-induced CHF.
- ACE inhibition reverses ventricular ADM activation in CHF.
- Cardiac ADM gene expression is differentially regulated between atrium and ventricle in CHF.
Abstract:
Adrenomedullin (ADM), a potent natriuretic and vasorelaxing peptide with inotropic properties, is elevated in plasma in human and experimental congestive heart failure (CHF). Recent studies suggest that angiotensin II stimulates ADM production and secretion from cardiac myocytes and fibroblasts. In the present study, we investigated cardiac ADM in experimental CHF, and tested the hypothesis that angiotensin converting enzyme (ACE) inhibition modulates cardiac ADM in CHF. Cardiac tissue ADM immunoreactivity and gene expression were assessed by radioimmunoassay, immunohistochemistry, in situ hybridization and Northern blot analysis in normal and CHF dogs in the presence and absence of ACE inhibition. Experimental CHF was produced by progressive rapid ventricular pacing and characterized by increased ventricular ADM concentrations as well as increased ventricular ADM gene expression. ACE inhibition abolished the increases in ventricular ADM concentrations and ventricular ADM gene expression in CHF. Ventricular ADM gene expression was localized to ventricular myocytes and correlated with left ventricular mass index, suggesting that ventricular ADM is a marker for ventricular hypertrophy. In contrast, atrial ADM concentrations and gene expression did not change in CHF with or without ACE inhibition. Increased plasma ADM concentrations in CHF were also abolished with ACE inhibition. The present study demonstrates that circulating and ventricular ADM are activated in pacing-induced experimental CHF and that ACE inhibition reverses ventricular ADM activation in CHF. This study also indicates that cardiac ADM gene expression is differently regulated between atrium and ventricle in CHF.
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