Related Experiment Video
Updated: May 7, 2026

In Vitro Differentiation of Human Mesenchymal Stem Cells into Functional Cardiomyocyte-like Cells
Published on: August 9, 2017
Chronic heart failure is associated with transforming growth factor beta-dependent yield and functional decline in
Liudmila Zakharova1, Hikmet Nural-Guvener, James Nimlos
1Center for Cardiovascular Research at Banner Sun Health Research Institute, Sun City, AZ.
Insights
Chronic heart failure (CHF) impairs cardiac progenitor cells. Inhibiting transforming growth factor-beta (TGF-β) signaling improves their number, phenotype, and differentiation potential for potential cell therapy applications.
Area of Science:
- Cardiovascular Biology
- Stem Cell Biology
- Regenerative Medicine
Background:
- Cardiac c-Kit+ cells show modest benefits post-myocardial infarction but their potential is limited in chronic heart failure (CHF).
- The impact of CHF on explant-derived progenitor cells remains poorly understood.
- Investigating CHF effects on cardiac progenitor cells is crucial for optimizing cell therapy.
Purpose of the Study:
- To determine the effect of CHF on cardiac explant c-Kit+ progenitor cell number and phenotype.
- To elucidate the regulatory mechanisms underlying these changes.
- To explore therapeutic strategies for improving progenitor cell function in CHF.
Main Methods:
- Myocardial infarction model in animals, with CHF induced and confirmed by specific hemodynamic and structural criteria.
- Isolation and characterization of cardiac c-Kit+ cells from sham and CHF explants.
- In vitro intervention using small-molecule inhibitors targeting transforming growth factor-beta (TGF-β) signaling pathways (TGF-β receptor type I, Smad 2/3).
Main Results:
- CHF explants yielded fewer c-Kit+ cells compared to sham controls.
- CHF-derived c-Kit+ cells exhibited increased TGF-β signaling, elevated epithelial-to-mesenchymal transition markers, and reduced pluripotency markers.
- TGF-β inhibition in vitro improved c-Kit+ cell yield, attenuated EMT markers, increased Nanog expression, and enhanced cardiomyocyte-like differentiation.
Conclusions:
- TGF-β signaling negatively regulates cardiac progenitor cell phenotype and function in CHF.
- Inhibition of TGF-β signaling offers a promising strategy to enhance cardiac progenitor cell quality and quantity.
- This approach may optimize cell expansion protocols for clinical applications in heart failure therapy.
Background:
Cardiac c-Kit+ cells isolated from cardiac explant-derived cells modestly improve cardiac functions after myocardial infarction; however, their full potential has not yet been realized. For instance, the majority of potential candidates for cell therapy suffer from chronic heart failure (CHF), and it is unclear how this disease affects the explant-derived progenitor cells. Therefore, the objective of this study was to determine the effect of CHF on the number and phenotype of cardiac explant c-Kit+ progenitors and elucidate mechanisms of their regulation.
Methods And Results:
Myocardial infarction was created by left anterior descending coronary artery occlusion. Sham-operated animals were used as a control group. CHF-developed infarcted animals were selected on the basis of left ventricle end-diastolic pressure ≥ 20 mm Hg and scar size ≥ 30%. Here, we found that CHF atrial explants produced less c-Kit+ cells than sham explants. CHF-derived c-Kit+ cells exhibited upregulated transforming growth factor-β (TGF-β) signaling, increased level of epithelial to mesenchymal transition markers, and diminished expression of pluripotency markers compared with shams. We show that intervention with TGF-β signaling by inhibiting TGF-β receptor type I or Smad 2/3 using small-molecule inhibitors improved c-Kit+ cell yield, attenuated epithelial to mesenchymal transition markers, stimulated the pluripotency marker Nanog, and improved efficiency of c-Kit+ cell differentiation toward cardiomyocyte-like cells in vitro.
Conclusions:
Taken together, our findings suggest that TGF-β inhibition positively modulates c-Kit+ cell phenotype and function in vitro, and this strategy may be considered in optimizing cardiac progenitor function and cell expansion protocols for clinical application.
Related Concept Videos
Pathophysiology of Heart Failure
Heart Failure II: Pathophysiology
Heart Failure I: Introduction
Cardiomyopathy II: Dilated Cardiomyopathy
Heart Failure IV: Classification and Diagnostic Evaluation
Imbalances in Cardiac Output
CHF can occur due to the failure of either side of the heart. Left-side failure leads to pulmonary congestion—the right side continues to send blood...
