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Constitutive protein kinase G activation exacerbates stress-induced cardiomyopathy
Gerburg K Schwaerzer1, Darren E Casteel1, Federico Cividini1
1Department of Medicine, University of California San Diego, La Jolla, California, 92093, USA.
Insights
Long-term activation of protein kinase G (PKG) in mice may harm the heart, particularly under stress. This study found that constitutive PKG activation led to cardiac dysfunction and adverse remodeling in response to pressure overload.
Area of Science:
- Cardiovascular Biology
- Molecular Cardiology
- Pharmacology
Background:
- Heart failure presents significant morbidity and mortality, necessitating novel therapeutic strategies.
- Preclinical studies suggest protein kinase G (PKG) activation may protect the stressed heart.
- Clinical data on PKG activation are inconsistent, and its long-term cardiac effects remain unclear.
Purpose of the Study:
- To investigate the cardiac consequences of constitutive, cGMP-independent protein kinase G (PKG) activation.
- To characterize the cardiac phenotype of Prkg1R177Q/+ mice under basal and stressed conditions.
Main Methods:
- Cardiac myocyte contractility was assessed in Prkg1R177Q/+ mice.
- Mice underwent pressure overload via transaortic constriction or angiotensin II infusion.
- Cardiac structure, fibrosis, apoptosis, and function were evaluated.
Main Results:
- Constitutively active PKG in myocytes altered sarcomeric protein phosphorylation and reduced contractility.
- Aging Prkg1R177Q/+ mice showed mild cardiac fibrosis.
- Under stress, Prkg1R177Q/+ mice exhibited exacerbated hypertrophy, fibrosis, apoptosis, and ventricular dysfunction.
Conclusions:
- Sustained protein kinase G (PKG) activation can be detrimental to cardiac health.
- Long-term PKG activation may worsen heart conditions during pressure overload and neurohumoral stress.
Background And Purpose:
Heart failure is associated with high morbidity and mortality, and new therapeutic targets are needed. Preclinical data suggest that pharmacological activation of protein kinase G (PKG) can reduce maladaptive ventricular remodelling and cardiac dysfunction in the stressed heart. However, clinical trial results have been mixed and the effects of long-term PKG activation in the heart are unknown.
Experimental Approach:
We characterized the cardiac phenotype of mice carrying a heterozygous knock-in mutation of PKG1 (Prkg1R177Q/+ ), which causes constitutive, cGMP-independent activation of the kinase. We examined isolated cardiac myocytes and intact mice, the latter after stress induced by surgical transaortic constriction or angiotensin II (Ang II) infusion.
Key Results:
Cardiac myocytes from Prkg1R177Q/+ mice showed altered phosphorylation of sarcomeric proteins and reduced contractility in response to electrical stimulation, compared to cells from wild type mice. Under basal conditions, young PKG1R177Q/+ mice exhibited no obvious cardiac abnormalities, but aging animals developed mild increases in cardiac fibrosis. In response to angiotensin II infusion or fixed pressure overload induced by transaortic constriction, young PKGR177Q/+ mice exhibited excessive hypertrophic remodelling with increased fibrosis and myocyte apoptosis, leading to increased left ventricular dilation and dysfunction compared to wild type litter mates.
Conclusion And Implications:
Long-term PKG1 activation in mice may be harmful to the heart, especially in the presence of pressure overload and neurohumoral stress.
Linked Articles:
This article is part of a themed issue on cGMP Signalling in Cell Growth and Survival. To view the other articles in this section visit http://onlinelibrary.wiley.com/doi/10.1111/bph.v179.11/issuetoc.
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