Activin A Modulates CRIPTO-1/HNF4α+ Cells to Guide Cardiac Differentiation from Human Embryonic Stem Cells
Robin Duelen1, Guillaume Gilbert2, Abdulsamie Patel3
1Translational Cardiomyology Laboratory, Stem Cell Biology and Embryology Unit, Department of Development and Regeneration, KU Leuven, 3000 Leuven, Belgium.
Insights
High levels of Activin A promote cardiomyocyte differentiation from human pluripotent stem cells by enhancing endoderm development. This improves early cardiac cell maturation and function, aiding regenerative therapy research.
Area of Science:
- Cardiology
- Developmental Biology
- Stem Cell Biology
Background:
- Human pluripotent stem cells (hPSCs) are crucial for cardiac research, but in vitro differentiation yields heterogeneous cardiomyocyte populations.
- Efficient differentiation protocols are needed to overcome limitations in regenerative therapies.
Purpose of the Study:
- To investigate the effect of Activin A on early cardiac differentiation of hPSCs.
- To understand how Activin A influences cardiomyocyte maturation and function.
Main Methods:
- hPSCs were differentiated into cardiomyocytes using embryoid body formation.
- High levels of Activin A were added during early differentiation.
- CRIPTO-1 expression and cell properties (beating, action potentials, Ca2+ dynamics) were analyzed.
Main Results:
- High Activin A levels increased endoderm derivatives, promoting cardiomyocyte differentiation.
- Activin A dose-dependently increased CRIPTO-1 coreceptor expression.
- Improved cell maturation led to increased beating frequency and contracting embryoid bodies.
Conclusions:
- Activin A enhances early cardiac differentiation and maturation of hPSCs.
- This protocol may yield cardiomyocytes with functional phenotypes relevant for regenerative medicine.
- Further exploration is needed to optimize cardiomyocyte properties for adult-like function.
Abstract:
The use of human pluripotent stem cells in basic and translational cardiac research requires efficient differentiation protocols towards cardiomyocytes. In vitro differentiation yields heterogeneous populations of ventricular-, atrial-, and nodal-like cells hindering their potential applications in regenerative therapies. We described the effect of the growth factor Activin A during early human embryonic stem cell fate determination in cardiac differentiation. Addition of high levels of Activin A during embryoid body cardiac differentiation augmented the generation of endoderm derivatives, which in turn promoted cardiomyocyte differentiation. Moreover, a dose-dependent increase in the coreceptor expression of the TGF-β superfamily member CRIPTO-1 was observed in response to Activin A. We hypothesized that interactions between cells derived from meso- and endodermal lineages in embryoid bodies contributed to improved cell maturation in early stages of cardiac differentiation, improving the beating frequency and the percentage of contracting embryoid bodies. Activin A did not seem to affect the properties of cardiomyocytes at later stages of differentiation, measuring action potentials, and intracellular Ca2+ dynamics. These findings are relevant for improving our understanding on human heart development, and the proposed protocol could be further explored to obtain cardiomyocytes with functional phenotypes, similar to those observed in adult cardiac myocytes.
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