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Efficient Derivation of Human Cardiac Precursors and Cardiomyocytes from Pluripotent Human Embryonic Stem Cells with Small Molecule Induction
Published on: November 3, 2011
The L-type Ca2+ channels blocker nifedipine represses mesodermal fate determination in murine embryonic stem cells
Filomain Nguemo1, Bernd K Fleischmann, Manoj K Gupta
1Institute of Neurophysiology, University of Cologne, Cologne, Germany.
Abstract:
Dihydropyridines (DHP), which nifedipine is a member of, preferentially block Ca(2+) channels of different cell types. Moreover, influx of Ca(2+) through L-type Ca(2+) channels (LTCCs) activates Ca(2+) signaling pathways, which in turn contribute to numerous cellular processes. Although LTCCs are expressed in undifferentiated cells, very little is known about its contributions to the transcriptional regulation of mesodermal and cardiac genes. This study aimed to examine the contribution of LTCCs and the effect of nifedipine on the commitment of pluripotent stem cells toward the cardiac lineage in vitro. The murine embryonic stem (ES, cell line D3) and induced pluripotent stem (iPS, cell clone 09) cells were differentiated into enhanced green fluorescence protein (EGFP) expressing spontaneously beating cardiomyocytes (CMs). Early treatment of differentiating cells with 10 µM nifedipine led to a significant inhibition of the cardiac mesoderm formation and cardiac lineage commitment as revealed by gene regulation analysis. This was accompanied by the inhibition of spontaneously occurring Ca(2+) transient and reduction of LTCCs current density (I(CaL)) of differentiated CMs. In addition, nifedipine treatment instigated a pronounced delay of the spontaneous beating embryoid body (EB) and led to a poor surface localization of L-type Ca(2+) channel α(1C) (Ca(V)1.2) subunits. Contrary late incubation of pluripotent stem cells with nifedipine was without any impact on the differentiation process and did not affect the derived CMs function. Our data indicate that nifedipine blocks the determined path of pluripotent stem cells to cardiomyogenesis by inhibition of mesodermal commitment at early stages of differentiation, thus the proper upkeep Ca(2+) concentration and pathways are essentially required for cardiac gene expression, differentiation and function.
Insights
Nifedipine, a dihydropyridine, inhibits early cardiac mesoderm formation in pluripotent stem cells by blocking L-type Ca(2+) channels. This early intervention is crucial for cardiac gene expression and differentiation.
Area of Science:
- Cardiovascular Biology
- Stem Cell Biology
- Molecular Pharmacology
Background:
- L-type Ca(2+) channels (LTCCs) regulate cellular processes via Ca(2+) signaling.
- LTCCs are present in undifferentiated cells, but their role in mesodermal and cardiac gene regulation is unclear.
- Dihydropyridines, like nifedipine, are known Ca(2+) channel blockers.
Purpose of the Study:
- To investigate the role of LTCCs in pluripotent stem cell commitment to the cardiac lineage.
- To determine the effect of nifedipine on cardiac differentiation in vitro.
- To elucidate the impact of Ca(2+) signaling on cardiac gene expression and cardiomyocyte function.
Main Methods:
- Murine embryonic stem (ES) and induced pluripotent stem (iPS) cells were differentiated into cardiomyocytes (CMs).
- Early and late treatments with nifedipine (10 µM) were applied during differentiation.
- Gene expression analysis, Ca(2+) transient measurements, and electrophysiological recordings (I(CaL)) were performed.
- Localization of L-type Ca(2+) channel α(1C) (Ca(V)1.2) subunits was assessed.
Main Results:
- Early nifedipine treatment significantly inhibited cardiac mesoderm formation and lineage commitment.
- This inhibition correlated with suppressed Ca(2+) transients and reduced LTCCs current density in differentiated CMs.
- Nifedipine delayed spontaneous embryoid body beating and impaired Ca(V)1.2 subunit surface localization.
- Late nifedipine treatment had no significant impact on differentiation or CM function.
Conclusions:
- Nifedipine blocks pluripotent stem cell cardiomyogenesis by inhibiting early mesodermal commitment.
- Proper Ca(2+) concentration and LTCCs activity are essential for cardiac gene expression, differentiation, and function.
- Early-stage LTCCs activity is critical for establishing the cardiac lineage from pluripotent stem cells.

