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Published on: June 3, 2018
GRK5-mediated exacerbation of pathological cardiac hypertrophy involves facilitation of nuclear NFAT activity
Jonathan E Hullmann1, Laurel A Grisanti1, Catherine A Makarewich1
1From the Center for Translational Medicine, Thomas Jefferson University, Philadelphia, PA (J.E.H., J.I.G.); and Center for Translational Medicine (J.E.H., L.A.G., E.G. J.I.G., J.K.C., D.G.T., W.J.K.) and Cardiovascular Research Center (C.A.M., S.R.H.), Temple University School of Medicine, Philadelphia, PA.
Rationale:
G protein-coupled receptor kinases (GRKs) acting in the cardiomyocyte regulate important signaling events that control cardiac function. Both GRK2 and GRK5, the predominant GRKs expressed in the heart, have been shown to be upregulated in failing human myocardium. Although the canonical role of GRKs is to desensitize G protein-coupled receptors via phosphorylation, it has been demonstrated that GRK5, unlike GRK2, can reside in the nucleus of myocytes and exert G protein-coupled receptor-independent effects that promote maladaptive cardiac hypertrophy and heart failure.
Objective:
To explore novel mechanisms by which GRK5 acting in the nucleus of cardiomyocytes participates in pathological cardiac hypertrophy.
Methods And Results:
In this study, we have found that GRK5-mediated pathological cardiac hypertrophy involves the activation of the nuclear factor of activated T cells (NFAT) because GRK5 causes enhancement of NFAT-mediated hypertrophic gene transcription. Transgenic mice with cardiomyocyte-specific GRK5 overexpression activate an NFAT-reporter in mice basally and after hypertrophic stimulation, including transverse aortic constriction and phenylephrine treatment. Complimentary to this, GRK5 null mice exhibit less NFAT transcriptional activity after transverse aortic constriction. Furthermore, the loss of NFATc3 expression in the heart protected GRK5 overexpressing transgenic mice from the exaggerated hypertrophy and early progression to heart failure seen after transverse aortic constriction. Molecular studies suggest that GRK5 acts in concert with NFAT to increase hypertrophic gene transcription in the nucleus via GRK5's ability to bind DNA directly without a phosphorylation event.
Conclusions:
GRK5, acting in a kinase independent manner, is a facilitator of NFAT activity and part of a DNA-binding complex responsible for pathological hypertrophic gene transcription.
Insights
G protein-coupled receptor kinase 5 (GRK5) in the nucleus promotes cardiac hypertrophy by enhancing nuclear factor of activated T cells (NFAT) activity. GRK5 directly binds DNA, independent of its kinase function, to drive hypertrophic gene transcription.
Area of Science:
- Cardiology
- Molecular Biology
- Cell Biology
Background:
- G protein-coupled receptor kinases (GRKs) regulate cardiac function.
- GRK2 and GRK5 are the main GRKs in the heart, often upregulated in heart failure.
- GRK5, unlike GRK2, can enter the nucleus and mediate G protein-coupled receptor-independent effects promoting cardiac hypertrophy.
Purpose of the Study:
- To investigate the nuclear mechanisms of GRK5 in promoting pathological cardiac hypertrophy.
- To elucidate the role of GRK5 in cardiomyocyte signaling pathways leading to heart failure.
Main Methods:
- Utilized transgenic mice with cardiomyocyte-specific GRK5 overexpression.
- Employed transverse aortic constriction and phenylephrine treatment for hypertrophic stimulation.
- Assessed NFAT transcriptional activity and NFATc3 expression in cardiac tissue.
- Investigated GRK5 DNA-binding capabilities and its interaction with NFAT in the nucleus.
Main Results:
- GRK5 overexpression enhanced basal and stimulated NFAT transcriptional activity.
- GRK5 null mice showed reduced NFAT activity post-transverse aortic constriction.
- Loss of NFATc3 protected GRK5-overexpressing mice from exaggerated hypertrophy and heart failure.
- GRK5 directly binds DNA, facilitating NFAT-mediated hypertrophic gene transcription independently of phosphorylation.
Conclusions:
- GRK5 acts as a kinase-independent facilitator of NFAT activity in pathological cardiac hypertrophy.
- GRK5 is part of a nuclear DNA-binding complex that drives hypertrophic gene transcription.
- Targeting the GRK5-NFAT interaction may offer a novel therapeutic strategy for heart failure.
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