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Updated: May 28, 2025

Isolation and Culture of Adult Mouse Cardiomyocytes for Cell Signaling and in vitro Cardiac Hypertrophy
Published on: May 21, 2014
Cardiomyocyte PRL2 Promotes Cardiac Hypertrophy via Directly Dephosphorylating AMPKα2
Xue Han1,2,3, Qiaojuan Shi2, Yu Tu2
1Department of Pharmacy and Institute of Inflammation, Zhejiang Provincial People's Hospital, Affiliated People's Hospital (X.H., Y.Z., Y.W., G.L.), Hangzhou Medical College, Zhejiang, China.
Background:
Pathological cardiac hypertrophy can result in heart failure. Protein dephosphorylation plays a primary role in the mediation of various cellular processes in cardiomyocytes. Here, we investigated the effects of a protein tyrosine phosphatase, PRL2 (phosphatase of regenerative liver 2), on pathological cardiac hypertrophy.
Methods:
The PRL2 knockout mice were subjected to angiotensin II infusion or transverse aortic constriction to induce myocardial hypertrophy and cardiac dysfunction. RNA-sequencing analysis was performed to explore the underlying mechanisms. Mass spectrometry and bio-layer interferometry assays were used to identify AMPKα2 (AMP-activated protein kinase α2) as an interacting protein of PRL2. Mutant plasmids of AMPKα2 were used to clarify how PRL2 interacts and dephosphorylates AMPKα2.
Results:
A significant upregulation of PRL2 was observed in hypertrophic myocardium tissues in mice and patients with heart failure. PRL2 deficiency alleviated cardiac hypertrophy, fibrosis, and dysfunction in mice challenged with angiotensin II infusion or transverse aortic constriction. Transcriptomic and biochemical analyses showed that PRL2 knockout or silence maintained AMPKT172 phosphorylation and subsequent mitochondrial integrity in angiotensin II-challenged heart tissues or cardiomyocytes. Mass spectrometry-based interactome assay indicated AMPKα2 subunit as the substrate of PRL2. Mechanistically, PRL2 binds to the C-terminal domain of AMPKα2 and then dephosphorylates AMPKα2T172 via its active site C46. Adeno-associated virus 9-mediated deficiency of cardiomyocyte PRL2 also protected cardiac mitochondrial function and showed cardioprotective effects in angiotensin II-challenged mice, but these benefits were not observed in AMPKα2-/- mice.
Conclusions:
This study reveals that PRL2, as a novel AMPK-regulating phosphatase, promotes mitochondrial instability and hypertrophic injury in cardiomyocytes and provides PLR2 as a potential target for future drug development treating heart failure.
Insights
Pathological cardiac hypertrophy is linked to heart failure. This study shows that phosphatase PRL2 promotes heart injury by dephosphorylating AMPK, suggesting PRL2 as a potential therapeutic target for heart failure.
Area of Science:
- Cardiovascular Biology
- Molecular Cardiology
- Biochemistry
Background:
- Pathological cardiac hypertrophy is a precursor to heart failure.
- Protein dephosphorylation is crucial for cardiomyocyte function.
- The role of protein tyrosine phosphatase PRL2 in cardiac hypertrophy was investigated.
Purpose of the Study:
- To investigate the role of PRL2 in pathological cardiac hypertrophy.
- To elucidate the molecular mechanisms by which PRL2 affects cardiac function.
- To identify PRL2 as a potential therapeutic target for heart failure.
Main Methods:
- Utilized PRL2 knockout mice subjected to angiotensin II infusion and transverse aortic constriction.
- Employed RNA-sequencing, mass spectrometry, and bio-layer interferometry assays.
- Investigated the interaction and dephosphorylation of AMPKα2 by PRL2 using mutant plasmids.
Main Results:
- PRL2 was upregulated in hypertrophic myocardium and its deficiency alleviated cardiac hypertrophy and dysfunction.
- PRL2 deficiency maintained AMPKT172 phosphorylation and mitochondrial integrity.
- PRL2 dephosphorylates AMPKα2 at T172, promoting mitochondrial instability and hypertrophic injury.
Conclusions:
- PRL2 acts as a novel AMPK-regulating phosphatase that exacerbates cardiac hypertrophy.
- PRL2 promotes mitochondrial instability and hypertrophic injury in cardiomyocytes.
- PRL2 represents a potential therapeutic target for treating heart failure.
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