Signalosome-Regulated Serum Response Factor Phosphorylation Determining Myocyte Growth in Width Versus Length as a

Jinliang Li1,2, Yuliang Tan3, Catherine L Passariello2

  • 1Departments of Ophthalmology and Medicine, Stanford Cardiovascular Institute, Stanford University, Palo Alto, CA (J.L., Xueyi Li, Y. L., Q.Y., H.T., M.S.K.).

Circulation
|September 16, 2020
PubMed

Insights

Scientists discovered a molecular switch controlling cardiac myocyte growth, crucial for preventing heart failure. This finding offers new therapeutic targets for treating pathological cardiac hypertrophy.

Area of Science:

  • Cardiovascular Biology
  • Molecular Cardiology
  • Epigenetics

Background:

  • Concentric and eccentric cardiac hypertrophy, linked to pressure and volume overload, increase heart failure risk.
  • These hypertrophy types involve asymmetrical cardiac myocyte growth (width vs. length).
  • Mechanisms governing this asymmetrical growth are poorly understood, hindering therapeutic development.

Purpose of the Study:

  • To elucidate the molecular mechanisms controlling pathological cardiac myocyte hypertrophy.
  • To identify potential therapeutic targets for preventing or treating heart failure.

Main Methods:

  • Utilized primary adult rat ventricular myocytes, adeno-associated virus (AAV)-mediated gene delivery in mice, and human tissue samples.
  • Employed chromatin immunoprecipitation with sequencing and precision nuclear run-on sequencing to define transcriptional regulation.
  • Investigated the role of SRF phosphorylation and associated signaling pathways.

Main Results:

  • Identified SRF (serum response factor) phosphorylation as a key regulator of myocyte width vs. length growth, acting as an epigenomic switch.
  • Discovered that RSK3 and PP2A, organized by mAKAPβ, bidirectionally regulate SRF phosphorylation.
  • Demonstrated that inhibiting RSK3 or PP2A signaling via AAV-mediated gene therapy prevents adverse cardiac remodeling and improves function in preclinical models.
  • Observed decreased SRF phosphorylation in human dilated hearts, suggesting therapeutic potential.

Conclusions:

  • A novel molecular switch involving mAKAPβ-regulated SRF phosphorylation controls cardiac myocyte morphology changes in response to pathological stressors.
  • AAV-based gene therapies targeting this pathway represent a promising translational strategy for heart failure treatment.
Abstract