Involvement of crosstalk between Oct4 and Meis1a in neural cell fate decision

Takeyuki Yamada1, Yumiko Urano-Tashiro, Saori Tanaka

  • 1Department of Biological Science and Technology, Faculty of Industrial Science and Technology, Tokyo University of Science, Noda-shi, Chiba, Japan.

Plos One
|March 2, 2013
PubMed

Insights

A novel regulatory mechanism involving Oct4 and Meis1a is crucial for neural differentiation. This crosstalk ensures proper cell fate decisions in embryonic stem cells, guiding them towards neuroectoderm development.

Area of Science:

  • Stem cell biology
  • Developmental biology
  • Gene regulation

Background:

  • Oct4 is vital for embryonic stem cell (ES) pluripotency and cell fate decisions.
  • The precise regulation of Oct4 during neuroectoderm (NE) determination from ES cells remains unclear.

Purpose of the Study:

  • To elucidate the regulatory mechanism of Oct4 gene expression during neural differentiation.
  • To investigate the role of crosstalk between Oct4 and Meis1a in neural differentiation of mouse P19 embryonic carcinoma (EC) cells.

Main Methods:

  • Retinoic acid (RA) induction of P19 EC cells.
  • Quantitative analysis of gene expression (Oct4, Meis1a).
  • Chromatin immunoprecipitation (ChIP) and luciferase reporter assays.
  • Assessment of neural stem cell (NSC) marker expression.

Main Results:

  • Oct4 expression transiently increased then decreased during RA-induced neural differentiation.
  • Meis1a expression was induced and subsequently suppressed Oct4.
  • Oct4 directly activated Meis1a expression via promoter binding and epigenetic modifications (H3 acetylation, 5hmC).
  • Meis1a directly suppressed Oct4 expression via promoter binding with HDAC1.
  • Ectopic Meis1a expression promoted neural differentiation and NSC marker expression, while Meis1a downregulation inhibited it.

Conclusions:

  • A mutual regulatory feedback loop between Oct4 and Meis1a is essential for NE determination from EC cells.
  • This Oct4-Meis1a crosstalk governs cell fate decisions during neural differentiation.

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