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NPR-A regulates self-renewal and pluripotency of embryonic stem cells

Cell Death and Disease, ISSN: 2041-4889, Vol: 2, Issue: 3, Page: e127
2011
  • 29
    Citations
  • 0
    Usage
  • 27
    Captures
  • 0
    Mentions
  • 48
    Social Media
Metric Options:   Counts1 Year3 Year

Metrics Details

  • Citations
    29
  • Captures
    27
  • Social Media
    48
    • Shares, Likes & Comments
      48
      • Facebook
        48

Article Description

Self-renewal and pluripotency of embryonic stem (ES) cells are maintained by several signaling cascades and by expression of intrinsic factors, such as Oct4, Nanog and Sox2. The mechanism regulating these signaling cascades in ES cells is of great interest. Recently, we have demonstrated that natriuretic peptide receptor A (NPR-A), a specific receptor for atrial and brain natriuretic peptides (ANP and BNP, respectively), is expressed in pre-implantation embryos and in ES cells. Here, we examined whether NPR-A is involved in the maintenance of ES cell pluripotency. RNA interference-mediated knockdown of NPR-A resulted in phenotypic changes, indicative of differentiation, downregulation of pluripotency factors (such as Oct4, Nanog and Sox2) and upregulation of differentiation genes. NPR-A knockdown also resulted in a marked downregulation of phosphorylated Akt. Furthermore, NPR-A knockdown induced accumulation of ES cells in the G1 phase of the cell cycle. Interestingly, we found that ANP was expressed in self-renewing ES cells, whereas its level was reduced after ES cell differentiation. Treatment of ES cells with ANP upregulated the expression of Oct4, Nanog and phosphorylated Akt, and this upregulation depended on NPR-A signaling, because it was completely reversed by pretreatment with either an NPR-A antagonist or a cGMP-dependent protein kinase inhibitor. These findings provide a novel role for NPR-A in the maintenance of self-renewal and pluripotency of ES cells. © 2011 Macmillan Publishers Limited All rights reserved.

Bibliographic Details

E. M. Abdelalim; I. Tooyama

Springer Science and Business Media LLC

Immunology and Microbiology; Neuroscience; Biochemistry, Genetics and Molecular Biology

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