Skip to main content

Genome-Wide Transcriptome and Binding Sites Analyses Identify Early FOX Expressions for Enhancing Cardiomyogenesis Efficiency of hESC Cultures.

Publication ,  Journal Article
Yeo, HC; Ting, S; Brena, RM; Koh, G; Chen, A; Toh, SQ; Lim, YM; Oh, SKW; Lee, D-Y
Published in: Scientific reports
August 2016

The differentiation efficiency of human embryonic stem cells (hESCs) into heart muscle cells (cardiomyocytes) is highly sensitive to culture conditions. To elucidate the regulatory mechanisms involved, we investigated hESCs grown on three distinct culture platforms: feeder-free Matrigel, mouse embryonic fibroblast feeders, and Matrigel replated on feeders. At the outset, we profiled and quantified their differentiation efficiency, transcriptome, transcription factor binding sites and DNA-methylation. Subsequent genome-wide analyses allowed us to reconstruct the relevant interactome, thereby forming the regulatory basis for implicating the contrasting differentiation efficiency of the culture conditions. We hypothesized that the parental expressions of FOXC1, FOXD1 and FOXQ1 transcription factors (TFs) are correlative with eventual cardiomyogenic outcome. Through WNT induction of the FOX TFs, we observed the co-activation of WNT3 and EOMES which are potent inducers of mesoderm differentiation. The result strengthened our hypothesis on the regulatory role of the FOX TFs in enhancing mesoderm differentiation capacity of hESCs. Importantly, the final proportions of cells expressing cardiac markers were directly correlated to the strength of FOX inductions within 72 hours after initiation of differentiation across different cell lines and protocols. Thus, we affirmed the relationship between early FOX TF expressions and cardiomyogenesis efficiency.

Duke Scholars

Published In

Scientific reports

DOI

EISSN

2045-2322

ISSN

2045-2322

Publication Date

August 2016

Volume

6

Start / End Page

31068

Related Subject Headings

  • Wnt Proteins
  • Signal Transduction
  • Proteoglycans
  • Myocytes, Cardiac
  • Models, Cardiovascular
  • Mice
  • Mesoderm
  • Laminin
  • Humans
  • Human Embryonic Stem Cells
 

Citation

APA
Chicago
ICMJE
MLA
NLM
Yeo, H. C., Ting, S., Brena, R. M., Koh, G., Chen, A., Toh, S. Q., … Lee, D.-Y. (2016). Genome-Wide Transcriptome and Binding Sites Analyses Identify Early FOX Expressions for Enhancing Cardiomyogenesis Efficiency of hESC Cultures. Scientific Reports, 6, 31068. https://doi.org/10.1038/srep31068
Yeo, Hock Chuan, Sherwin Ting, Romulo Martin Brena, Geoffrey Koh, Allen Chen, Siew Qi Toh, Yu Ming Lim, Steve Kah Weng Oh, and Dong-Yup Lee. “Genome-Wide Transcriptome and Binding Sites Analyses Identify Early FOX Expressions for Enhancing Cardiomyogenesis Efficiency of hESC Cultures.Scientific Reports 6 (August 2016): 31068. https://doi.org/10.1038/srep31068.
Yeo, Hock Chuan, et al. “Genome-Wide Transcriptome and Binding Sites Analyses Identify Early FOX Expressions for Enhancing Cardiomyogenesis Efficiency of hESC Cultures.Scientific Reports, vol. 6, Aug. 2016, p. 31068. Epmc, doi:10.1038/srep31068.
Yeo HC, Ting S, Brena RM, Koh G, Chen A, Toh SQ, Lim YM, Oh SKW, Lee D-Y. Genome-Wide Transcriptome and Binding Sites Analyses Identify Early FOX Expressions for Enhancing Cardiomyogenesis Efficiency of hESC Cultures. Scientific reports. 2016 Aug;6:31068.

Published In

Scientific reports

DOI

EISSN

2045-2322

ISSN

2045-2322

Publication Date

August 2016

Volume

6

Start / End Page

31068

Related Subject Headings

  • Wnt Proteins
  • Signal Transduction
  • Proteoglycans
  • Myocytes, Cardiac
  • Models, Cardiovascular
  • Mice
  • Mesoderm
  • Laminin
  • Humans
  • Human Embryonic Stem Cells