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In Vitro Differentiation of Human Mesenchymal Stem Cells into Functional Cardiomyocyte-like Cells
Published on: August 9, 2017
In vitro cardiomyogenic potential of human amniotic fluid stem cells
Xuan Guan1, Dawn M Delo, Anthony Atala
1Wake Forest Institute for Regenerative Medicine, Wake Forest University of Health Sciences, Winston-Salem, NC 27157, USA.
Insights
Human amniotic fluid-derived stem (hAFS) cells show potential for cardiac cell therapy. These cells can differentiate into cardiomyocyte-like cells and form functional connections with existing heart cells.
Area of Science:
- Cardiovascular Biology
- Stem Cell Research
- Regenerative Medicine
Background:
- Current stem cell therapies for cardiac repair face limitations including cell availability, tumorigenicity, and arrhythmogenic risks.
- Human amniotic fluid-derived stem (hAFS) cells are being explored as an alternative cell source for regenerative medicine.
Purpose of the Study:
- To investigate the potential of hAFS cells for cardiac cell therapy.
- To assess the in vitro differentiation capabilities of hAFS cells towards a cardiomyocyte lineage.
Main Methods:
- hAFS cells were treated with 5-aza-2'-deoxycytidine (5-AZA-dC) to induce differentiation.
- Cardiac gene expression (MEF2, connexin43, cadherins, troponins, SOX2) was analyzed.
- hAFS cells were co-cultured with neonatal rat cardiomyocytes (NRCs) to evaluate cell-cell communication.
- Dye transfer and pharmacological inhibition (TPA) were used to assess functional connections.
Main Results:
- Undifferentiated hAFS cells expressed cardiac-related genes.
- 5-AZA-dC treatment induced differentiation into cardiomyocyte-like cells, evidenced by morphological changes and altered gene expression (upregulation of cardiac troponins, downregulation of SOX2).
- hAFS cells formed functional mechanical and electrical connections with NRCs, involving connexin43, allowing for dye transfer.
Conclusions:
- hAFS cells can be differentiated into a cardiomyocyte-like phenotype in vitro.
- hAFS cells establish functional intercellular communication with cardiomyocytes.
- hAFS cells represent a promising candidate for future cardiac cell therapy applications.
Abstract:
Stem cell therapy for damaged cardiac tissue is currently limited by a number of factors, including inability to obtain sufficient cell numbers, the potential tumorigenicity of certain types of stem cells and the possible link between stem cell therapy and the development of malignant arrhythmias. In this study, we investigated whether human amniotic fluid-derived stem (hAFS) cells could be a potential source of cells for cardiac cell therapy, by testing the in vitro differentiation capabilities. Undifferentiated hAFS cells express several cardiac genes, including the transcription factor mef2, the gap junction connexin43, and H- and N-cadherin. A 24 h incubation with 5-aza-2'-deoxycytidine (5-AZA-dC) induced hAFS cell differentiation along the cardiac lineage. Evidence for this differentiation included morphological changes, upregulation of cardiac-specific genes (cardiac troponin I and cardiac troponin T) and redistribution of connexin43, as well as downregulation of the stem cell marker SRY-box 2 (sox2). When co-cultured with neonatal rat cardiomyocytes (NRCs), hAFS cells formed both mechanical and electrical connections with the NRCs. Dye transfer experiments showed that calcein dye could be transferred from NRCs to hAFS cells through cellular connections. The gap junction connexin43 likely involved in the communication between the two cell types, because 12-O-tetradecanoylphorbol 13-acetate (TPA) could partially block cellular crosstalk. We conclude that hAFS cells can be differentiated into a cardiomyocyte-like phenotype and can establish functional communication with NRCs. Thus, hAFS cells may potentially be used for cardiac cell therapy.
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