Characterization and enrichment of cardiomyocytes derived from human embryonic stem cells
Chunhui Xu1, Shailaja Police, Namitha Rao
1Geron Corporation, Menlo Park, Calif 94025, USA. cxu@geron.com
Insights
Human embryonic stem cells (hESCs) can efficiently generate functional cardiomyocytes for cardiac disease therapy. These cells show long-term contractility and can be enriched for clinical applications.
Area of Science:
- Stem Cell Biology
- Cardiovascular Research
- Regenerative Medicine
Background:
- Cell replacement therapy offers potential for cardiac disease treatment.
- A significant challenge is the limited availability of suitable cells for therapy.
Purpose of the Study:
- To investigate the efficient generation of functional cardiomyocytes from human embryonic stem cells (hESCs).
- To evaluate the potential of hESCs for clinical applications in treating heart diseases.
Main Methods:
- Utilized multiple human embryonic stem cell lines (H1, H7, H9, H9.1, H9.2) for differentiation studies.
- Assessed cardiomyocyte markers, contractility, and proliferation post-differentiation.
- Employed 5-aza-2'-deoxycytidine, DMSO, and retinoic acid to evaluate differentiation enhancement.
- Used Percoll density centrifugation for cardiomyocyte enrichment.
Main Results:
- All examined hESC lines differentiated into cardiomyocytes, maintaining function over long-term culture (50 passages).
- Beating cardiomyocytes appeared within one week, retained contractility for over 70 days, and expressed key cardiac markers.
- Differentiation was enhanced by 5-aza-2'-deoxycytidine; enriched populations reached 70% cardiomyocytes and were proliferative.
Conclusions:
- Human embryonic stem cells can be efficiently differentiated into functional cardiomyocytes.
- The proliferative capacity and enrichment potential of hESC-derived cardiomyocytes support their development for clinical heart disease therapy.
Abstract:
Cell replacement therapy is a promising approach for the treatment of cardiac diseases, but is challenged by a limited supply of appropriate cells. We have investigated whether functional cardiomyocytes can be efficiently generated from human embryonic stem (hES) cells. Cardiomyocyte differentiation was evaluated using 3 parent (H1, H7, and H9) hES cell lines and 2 clonal (H9.1 and H9.2) hES cell lines. All cell lines examined differentiated into cardiomyocytes, even after long-term culture (50 passages or approximately 260 population doublings). Upon differentiation, beating cells were observed after one week in differentiation conditions, increased in numbers with time, and could retain contractility for over 70 days. The beating cells expressed markers characteristic of cardiomyocytes, such as cardiac alpha-myosin heavy chain, cardiac troponin I and T, atrial natriuretic factor, and cardiac transcription factors GATA-4, Nkx2.5, and MEF-2. In addition, cardiomyocyte differentiation could be enhanced by treatment of cells with 5-aza-2'-deoxycytidine but not DMSO or retinoic acid. Furthermore, the differentiated cultures could be dissociated and enriched by Percoll density centrifugation to give a population containing 70% cardiomyocytes. The enriched population was proliferative and showed appropriate expression of cardiomyocyte markers. The extended replicative capacity of hES cells and the ability to differentiate and enrich for functional human cardiomyocytes warrant further development of these cells for clinical application in heart diseases.
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