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Modified Mouse Embryonic Stem Cell based Assay for Quantifying Cardiogenic Induction Efficiency
Published on: April 22, 2011
Mineralocorticoid receptor overexpression in embryonic stem cell-derived cardiomyocytes increases their beating
Damien Le Menuet1, Mathilde Munier, Geri Meduri
1INSERM U693, Faculté de Médecine Paris-Sud, 63, rue Gabriel Péri, 94276 Le Kremlin Bicêtre Cedex, France.
Aims:
Cardiac mineralocorticoid receptor (MR) activation triggers adverse cardiovascular events that could be efficiently prevented by mineralocorticoid antagonists. To gain insights into the pathophysiological role of MR function, we established embryonic stem (ES) cell lines from blastocysts of transgenic mice overexpressing the human MR driven by its proximal P1 or distal P2 promoter and presenting with cardiomyopathy, tachycardia, and arrhythmia. Cardiomyocyte differentiation allowed us to investigate the molecular mechanisms contributing to MR-mediated cardiac dysfunction.
Methods And Results:
During cardiac differentiation, wild-type (WT) and recombinant ES cell cultures and excised beating patches expressed endogenous MR along with cardiac gene markers. The two-fold increase in MR protein detected in P1.hMR and P2.hMR cardiomyocytes led to a parallel increase in the spontaneous beating frequency of hMR-overexpressing cardiomyocytes compared with WT. The MR-mediated chronotropic effect was ligand-independent, could be partially repressed by spironolactone, and was accompanied by a significant two- to four-fold increase in mRNA and protein levels of the pacemaker channel HCN1, generating depolarizing If currents, thus revealing a potential new MR target. This was associated with modification in the expression of HCN4, the inward-rectifier potassium channel Kir2.1, and the L-type voltage-dependent calcium channel Cav1.2.
Conclusion:
We demonstrate that the amplification of MR signalling in ES-derived cardiomyocytes has a major impact on cardiomyocyte contractile properties through an important remodelling of ion channel expression, contributing to arrhythmias. Our results highlight the prominent role of MR function in cardiac physiology and support the benefit of MR antagonists in the management of cardiac dysfunctions.
Insights
Overexpressing the mineralocorticoid receptor (MR) in heart cells increases beating frequency and alters ion channel expression, contributing to arrhythmias. These findings support MR antagonists for treating cardiac dysfunction.
Area of Science:
- Cardiovascular Biology
- Molecular Cardiology
- Stem Cell Biology
Background:
- Cardiac mineralocorticoid receptor (MR) activation is linked to adverse cardiovascular events.
- Mineralocorticoid antagonists can prevent these events.
- Understanding MR's role in cardiac dysfunction is crucial for developing targeted therapies.
Purpose of the Study:
- To investigate the pathophysiological role of MR function in cardiac cells.
- To establish and utilize embryonic stem (ES) cell lines overexpressing human MR for mechanistic studies.
- To explore MR-mediated molecular mechanisms contributing to cardiac dysfunction.
Main Methods:
- Generation of transgenic mouse ES cell lines overexpressing human MR (P1 or P2 promoter).
- Cardiomyocyte differentiation of wild-type (WT) and MR-overexpressing ES cells.
- Analysis of MR protein levels, spontaneous beating frequency, and ion channel gene/protein expression (HCN1, HCN4, Kir2.1, Cav1.2).
Main Results:
- MR overexpression in cardiomyocytes led to a two-fold increase in MR protein and enhanced spontaneous beating frequency.
- This effect was ligand-independent and partially inhibited by spironolactone.
- Significant upregulation of the pacemaker channel HCN1 (2-4 fold) and modifications in HCN4, Kir2.1, and Cav1.2 expression were observed.
Conclusions:
- Amplified MR signaling in ES-derived cardiomyocytes significantly impacts contractile properties by altering ion channel expression, contributing to arrhythmias.
- MR function plays a prominent role in cardiac physiology.
- These findings support the therapeutic benefit of MR antagonists in managing cardiac dysfunctions.
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