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.

Circulation Research
|October 22, 2014
PubMed
Abstract

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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