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Updated: Jul 3, 2025

Generation of First Heart Field-like Cardiac Progenitors and Ventricular-like Cardiomyocytes from Human Pluripotent Stem Cells
Published on: June 19, 2018
Directed Differentiation of Human Induced Pluripotent Stem Cells to Heart Valve Cells
Ziwen Cai1,2, Miaomiao Zhu2,3, Li Xu1
1Department of Cardiovascular Surgery, Union Hospital, Tongji Medical College, Huazhong University of Science and Technology, Wuhan, Hubei, China (Z.C., L.X., Y.X., W.Y.Y., H.C., R.G., X.Q, J.S., W.Q., N.D.).
Insights
Researchers developed an efficient protocol to generate functional human induced pluripotent stem cells (hiPSCs)-derived heart valve cells. This breakthrough addresses a key challenge in valvular heart disease research by providing a reliable source of valve cells for study.
Area of Science:
- Stem cell biology
- Cardiovascular research
- Regenerative medicine
Background:
- Valvular heart disease research is hindered by a lack of high-quality, functional heart valve cells.
- Human induced pluripotent stem cells (hiPSCs) offer a potential solution, but established differentiation protocols are lacking.
- The molecular networks governing hiPSC differentiation into heart valve cells remain poorly understood.
Purpose of the Study:
- To develop an efficient protocol for differentiating hiPSCs into functional heart valve cells.
- To characterize the transcriptional and functional properties of these derived cells.
- To elucidate the differentiation trajectory and regulatory networks involved.
Main Methods:
- Sequential activation of Wnt, BMP4, VEGF, and NFATc1 signaling pathways in hiPSCs.
- Characterization of hiPSC-derived cells using gene expression profiling and functional assays.
- Longitudinal single-cell RNA sequencing to map differentiation pathways and identify key regulators.
Main Results:
- An efficient protocol yielded hiPSC-derived valve endothelial-like cells (CD144+) and interstitial-like cells (CD144-).
- These cells closely resembled primary heart valve cells in gene expression and function (e.g., tube formation, collagen secretion).
- Single-cell RNA sequencing identified key genes (NOTCH1, HEY1, MEF2C), pathways (TGF-β, Wnt, NOTCH), and transcription factors mediating differentiation, revealing a trajectory similar to embryonic development.
Conclusions:
- This study presents the first efficient strategy for generating functional hiPSC-derived valve endothelial-like and interstitial-like cells.
- The research elucidates the differentiation trajectory and transcriptional dynamics of hiPSCs into heart valve cells.
- The findings provide a valuable resource for advancing valvular heart disease research and therapeutic development.
Background:
A main obstacle in current valvular heart disease research is the lack of high-quality homogeneous functional heart valve cells. Human induced pluripotent stem cells (hiPSCs)-derived heart valve cells may help with this dilemma. However, there are no well-established protocols to induce hiPSCs to differentiate into functional heart valve cells, and the networks that mediate the differentiation have not been fully elucidated.
Methods:
To generate heart valve cells from hiPSCs, we sequentially activated the Wnt, BMP4, VEGF (vascular endothelial growth factor), and NFATc1 signaling pathways using CHIR-99021, BMP4, VEGF-165, and forskolin, respectively. The transcriptional and functional similarity of hiPSC-derived heart valve cells compared with primary heart valve cells were characterized. Longitudinal single-cell RNA sequencing was used to uncover the trajectory, switch genes, pathways, and transcription factors of the differentiation.
Results:
An efficient protocol was developed to induce hiPSCs to differentiate into functional hiPSC-derived valve endothelial-like cells and hiPSC-derived valve interstitial-like cells. After 6-day differentiation and CD144 magnetic bead sorting, ≈70% CD144+ cells and 30% CD144- cells were obtained. On the basis of single-cell RNA sequencing data, the CD144+ cells and CD144- cells were found to be highly similar to primary heart valve endothelial cells and primary heart valve interstitial cells in gene expression profile. Furthermore, CD144+ cells had the typical function of primary heart valve endothelial cells, including tube formation, uptake of low-density lipoprotein, generation of endothelial nitric oxide synthase, and response to shear stress. Meanwhile, CD144- cells could secret collagen and matrix metalloproteinases, and differentiate into osteogenic or adipogenic lineages like primary heart valve interstitial cells. Therefore, we identified CD144+ cells and CD144- cells as hiPSC-derived valve endothelial-like cells and hiPSC-derived valve interstitial-like cells, respectively. Using single-cell RNA sequencing analysis, we demonstrated that the trajectory of heart valve cell differentiation was consistent with embryonic valve development. We identified the main switch genes (NOTCH1, HEY1, and MEF2C), signaling pathways (TGF-β, Wnt, and NOTCH), and transcription factors (MSX1, SP5, and MECOM) that mediated the differentiation. Finally, we found that hiPSC-derived valve interstitial-like cells might derive from hiPSC-derived valve endothelial-like cells undergoing endocardial-mesenchymal transition.
Conclusions:
In summary, this is the first study to report an efficient strategy to generate functional hiPSC-derived valve endothelial-like cells and hiPSC-derived valve interstitial-like cells from hiPSCs, as well as to elucidate the differentiation trajectory and transcriptional dynamics of hiPSCs differentiated into heart valve cells.
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