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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.).
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.
Background:
Concentric and eccentric cardiac hypertrophy are associated with pressure and volume overload, respectively, in cardiovascular disease both conferring an increased risk of heart failure. These contrasting forms of hypertrophy are characterized by asymmetrical growth of the cardiac myocyte in mainly width or length, respectively. The molecular mechanisms determining myocyte preferential growth in width versus length remain poorly understood. Identification of the mechanisms governing asymmetrical myocyte growth could provide new therapeutic targets for the prevention or treatment of heart failure.
Methods:
Primary adult rat ventricular myocytes, adeno-associated virus (AAV)-mediated gene delivery in mice, and human tissue samples were used to define a regulatory pathway controlling pathological myocyte hypertrophy. Chromatin immunoprecipitation assays with sequencing and precision nuclear run-on sequencing were used to define a transcriptional mechanism.
Results:
We report that asymmetrical cardiac myocyte hypertrophy is modulated by SRF (serum response factor) phosphorylation, constituting an epigenomic switch balancing the growth in width versus length of adult ventricular myocytes in vitro and in vivo. SRF Ser103 phosphorylation is bidirectionally regulated by RSK3 (p90 ribosomal S6 kinase type 3) and PP2A (protein phosphatase 2A) at signalosomes organized by the scaffold protein mAKAPβ (muscle A-kinase anchoring protein β), such that increased SRF phosphorylation activates AP-1 (activator protein-1)-dependent enhancers that direct myocyte growth in width. AAV are used to express in vivo mAKAPβ-derived RSK3 and PP2A anchoring disruptor peptides that block the association of the enzymes with the mAKAPβ scaffold. Inhibition of RSK3 signaling prevents concentric cardiac remodeling induced by pressure overload, while inhibition of PP2A signaling prevents eccentric cardiac remodeling induced by myocardial infarction, in each case improving cardiac function. SRF Ser103 phosphorylation is significantly decreased in dilated human hearts, supporting the notion that modulation of the mAKAPβ-SRF signalosome could be a new therapeutic approach for human heart failure.
Conclusions:
We have identified a new molecular switch, namely mAKAPβ signalosome-regulated SRF phosphorylation, that controls a transcriptional program responsible for modulating changes in cardiac myocyte morphology that occur secondary to pathological stressors. Complementary AAV-based gene therapies constitute rationally-designed strategies for a new translational modality for heart failure.
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