T-Cell Factors as Transcriptional Inhibitors: Activities and Regulations in Vertebrate Head Development

Johnny Bou-Rouphael1, Béatrice C Durand1

  • 1Sorbonne Université, CNRS UMR7622, IBPS Developmental Biology Laboratory, Campus Pierre et Marie Curie, Paris, France.

Insights

Wnt signaling regulates neural development by controlling T-cell factor (TCF)/Lymphoid-Enhancer binding Factor (LEF) activity. This review focuses on TCF/LEF repression and BarH-Like 2 (BARHL2) roles in brain development and stem cells.

Area of Science:

  • Neuroscience
  • Developmental Biology
  • Molecular Biology

Background:

  • Wnt canonical signaling is crucial for neural development, influencing processes from axis formation to stem cell maintenance.
  • Research has shifted focus to T-cell factor (TCF)/Lymphoid-Enhancer binding Factor (LEF) as key mediators of Wnt transcriptional response.
  • TCF/LEF's switch between activation and repression drives pluripotency to differentiation in embryonic and stem cells.

Purpose of the Study:

  • To review the activities and regulatory mechanisms of TCF/LEF as transcriptional repressors.
  • To highlight the specific functions of BarH-Like 2 (BARHL2) in vertebrate brain development.
  • To examine Wnt/β-catenin pathway roles in Organizer formation and caudal forebrain growth.

Main Methods:

  • Literature review of studies on Wnt signaling, TCF/LEF, and BARHL2.
  • Analysis of transcriptional regulation in embryonic and neural stem cells.
  • Discussion of pathway alterations and potential links to tumorigenesis.

Main Results:

  • TCF/LEF acts as a transcriptional repressor, often in complex with co-repressors like Groucho/Transducin-Like Enhancer of split (Gro/TLE).
  • BarH-Like 2 (BARHL2) is identified as a pro-neural TCF/LEF-interacting partner.
  • TCF/LEF-mediated repression is critical for pushing cells from pluripotency towards differentiation.

Conclusions:

  • TCF/LEF transcriptional repression, influenced by partners like BARHL2, is vital for normal vertebrate brain development.
  • Understanding these regulatory switches is key to comprehending neural stem cell fate and potential tumor formation.
  • The Wnt/β-catenin pathway's role in early brain patterning and growth warrants further investigation.

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