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May 13, 2003Circulation1,004 citationsOpen Access

Differentiation of Human Embryonic Stem Cells to Cardiomyocytes

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CMChristine L. MummeryDODorien Ward‐van OostwaardPDPieter A. Doevendans

Structured PICO

Does coculture with visceral-endoderm-like cells induce cardiomyocyte differentiation in human embryonic stem cells?

P
Population
Human embryonic stem (hES) cells
I
Intervention
Coculture with visceral-endoderm (VE)-like cells from the mouse
C
Comparator
Primary human fetal cardiomyocytes (for comparison of electrophysiological properties and coupling)
O
Outcome
Cardiomyocyte differentiation (assessed by beating muscle, sarcomeric marker proteins, chronotropic responses, ion channel expression and function, and gap junction coupling)surrogate

Coculture with visceral-endoderm-like cells successfully induces differentiation of human embryonic stem cells into functional cardiomyocytes, providing a model for studying human cardiomyocytes and potential transplantation therapies.

Abstract

BACKGROUND: Cardiomyocytes derived from human embryonic stem (hES) cells could be useful in restoring heart function after myocardial infarction or in heart failure. Here, we induced cardiomyocyte differentiation of hES cells by a novel method and compared their electrophysiological properties and coupling with those of primary human fetal cardiomyocytes. METHODS AND RESULTS: hES cells were cocultured with visceral-endoderm (VE)-like cells from the mouse. This initiated differentiation to beating muscle. Sarcomeric marker proteins, chronotropic responses, and ion channel expression and function were typical of cardiomyocytes. Electrophysiology demonstrated that most cells resembled human fetal ventricular cells. Real-time intracellular calcium measurements, Lucifer yellow injection, and connexin 43 expression demonstrated that fetal and hES-derived cardiomyocytes are coupled by gap junctions in culture. Inhibition of electrical responses by verapamil demonstrated the presence of functional alpha1c-calcium ion channels. CONCLUSIONS: This is the first demonstration of induction of cardiomyocyte differentiation in hES cells that do not undergo spontaneous cardiogenesis. It provides a model for the study of human cardiomyocytes in culture and could be a step forward in the development of cardiomyocyte transplantation therapies.

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Cite This Study

Mummery et al. (2003) studied this question.

synapsesocial.com/papers/69f2cb3dbe8e9f1f31c5787dhttps://doi.org/10.1161/01.cir.0000068356.38592.68
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