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Derivation of Cardiac Progenitor Cells from Embryonic Stem Cells
Published on: January 12, 2015
Infarcted cardiac microenvironment may hinder cardiac lineage differentiation of human embryonic stem cells
Rui Wei1,2, Jin Yang1,2, Meijuan Gao1,2
1Department of Endocrinology and Metabolism, Peking University Third Hospital, No. 49 North Garden Road, Haidian District, Beijing, 100191, China.
Insights
The infarcted cardiac microenvironment hinders human embryonic stem cell (hESC) cardiac differentiation. In contrast, uninjured hearts support hESC differentiation into cardiac progenitors, suggesting nutrient deprivation in infarcted areas is a key factor.
Area of Science:
- Stem Cell Biology
- Cardiovascular Research
- Regenerative Medicine
Background:
- The cardiac microenvironment significantly influences cell fate and function.
- Understanding how the infarcted cardiac microenvironment affects stem cell differentiation is crucial for cardiac repair strategies.
Purpose of the Study:
- To investigate the impact of the infarcted cardiac microenvironment on the cardiac differentiation of human embryonic stem cells (hESCs).
- To compare hESC behavior and differentiation in infarcted versus uninjured cardiac tissues in vivo and under specific conditions in vitro.
Main Methods:
- Intramyocardial transplantation of hESCs into infarcted and uninjured rat hearts.
- Detection of mesodermal and cardiac lineage markers via immunofluorescence.
- In vitro differentiation of hESCs under hypoxic and low-nutrient conditions, followed by assessment of cardiac markers.
Main Results:
- Transplanted hESCs survived and formed grafts in both uninjured and infarcted hearts, with greater engraftment in uninjured hearts.
- Cardiac progenitor markers (Flk1) were detected in uninjured hearts but not in infarcted hearts.
- In vitro, hypoxia promoted cardiac differentiation, while low nutrients (low FBS) inhibited it, with infarcted microenvironment conditions showing poor differentiation.
Conclusions:
- Transplanted hESCs differentiate into cardiac progenitors in uninjured hearts but not in infarcted hearts.
- The infarcted cardiac microenvironment is unsuitable for hESC cardiac differentiation, likely due to nutrient deprivation.
- These findings highlight the critical role of the microenvironment in guiding stem cell-based cardiac regeneration.
Abstract:
Microenvironment regulates cell fate and function. In this study, we investigated the effects of the infarcted cardiac microenvironment on cardiac differentiation of human embryonic stem cells (hESCs). hESCs were intramyocardially transplanted into infarcted or uninjured rat hearts. After 4 weeks, mesodermal and cardiac lineage markers were detected by immunofluorescence. Cardiac function was assessed by echocardiography. hESCs were differentiated in vitro under hypoxic (5% O2 ), low-nutrient (5% FBS), or control condition. The numbers of beating clusters, proportions of cardiac troponin T (cTnT)-positive cells, and relative levels of cardiac-specific markers were determined. Results showed that in both uninjured and infarcted hearts, hESCs survived, underwent development, and formed intracardiac grafts, with a higher proportion in the uninjured hearts. However, cells that were double positive for human fetal liver kinase 1 (Flk1), a marker of cardiac progenitors, and human β-tubulin, a marker for labeling human cells, were found in the uninjured hearts but not in the infarcted hearts. hESC transplantation did not restore the cardiac function of acutely infarcted rats. In vitro, low FBS treatment was associated with fewer beating clusters, a lower proportion of cTnT-positive cells and lower levels of cardiac troponin I (cTnI) and α-myosin heavy chain (α-MHC) expression than those in the control. Conversely, hypoxia treatment was associated with a higher proportion of cTnT-positive cells and higher levels of cTnI expression. In conclusion, transplanted hESCs differentiate toward Flk1-positive cardiac progenitors in the uninjured but not infarcted hearts. The infarcted cardiac microenvironment recapitulated is unsuitable for cardiac differentiation of hESCs, likely due to nutrient deprivation.
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