E-cadherin and, in Its Absence, N-cadherin Promotes Nanog Expression in Mouse Embryonic Stem Cells via STAT3 Phosphorylation

Kate Hawkins, Lisa Mohamet, Sarah Ritson, Catherine L R Merry, Christopher M. Ward

Research output: Contribution to journalArticlepeer-review

Abstract

We have recently shown that loss of E-cadherin in mouse embryonic stem cells (mESCs) results in significant alterations to both the transcriptome and hierarchy of pluripotency-associated signaling pathways. Here, we show that E-cadherin promotes kruppel-like factor 4 (Klf4) and Nanog transcript and protein expression in mESCs via STAT3 phosphorylation and that β-catenin, and its binding region in E-cadherin, is required for this function. To further investigate the role of E-cadherin in leukemia inhibitory factor (LIF)-dependent pluripotency, E-cadherin null (Ecad-/-) mESCs were cultured in LIF/bone morphogenetic protein supplemented medium. Under these conditions, Ecad-/- mESCs exhibited partial restoration of cell-cell contact and STAT3 phosphorylation and upregulated Klf4, Nanog, and N-cadherin transcripts and protein. Abrogation of N-cadherin using an inhibitory peptide caused loss of phospho STAT3, Klf4, and Nanog in these cells, demonstrating that N-cadherin supports LIF-dependent pluripotency in this context. We therefore identify a novel molecular mechanism linking E- and N-cadherin to the core circuitry of pluripotency in mESCs. This mechanism may explain the recently documented role of E-cadherin in efficient induced pluripotent stem cell reprogramming. © AlphaMed Press.
Original languageEnglish
Pages (from-to)1842-1851
Number of pages9
JournalStem Cells
Volume30
Issue number9
Early online date20 Aug 2012
DOIs
Publication statusPublished - 2012

Keywords

  • β-catenin
  • E-cadherin
  • Embryonic stem cells
  • Kruppel-like factor 4
  • N-cadherin
  • Nanog
  • Pluripotency
  • STAT3

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