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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.
Abstract:
Since its first discovery in the late 90s, Wnt canonical signaling has been demonstrated to affect a large variety of neural developmental processes, including, but not limited to, embryonic axis formation, neural proliferation, fate determination, and maintenance of neural stem cells. For decades, studies have focused on the mechanisms controlling the activity of β-catenin, the sole mediator of Wnt transcriptional response. More recently, the spotlight of research is directed towards the last cascade component, the T-cell factor (TCF)/Lymphoid-Enhancer binding Factor (LEF), and more specifically, the TCF/LEF-mediated switch from transcriptional activation to repression, which in both embryonic blastomeres and mouse embryonic stem cells pushes the balance from pluri/multipotency towards differentiation. It has been long known that Groucho/Transducin-Like Enhancer of split (Gro/TLE) is the main co-repressor partner of TCF/LEF. More recently, other TCF/LEF-interacting partners have been identified, including the pro-neural BarH-Like 2 (BARHL2), which belongs to the evolutionary highly conserved family of homeodomain-containing transcription factors. This review describes the activities and regulatory modes of TCF/LEF as transcriptional repressors, with a specific focus on the functions of Barhl2 in vertebrate brain development. Specific attention is given to the transcriptional events leading to formation of the Organizer, as well as the roles and regulations of Wnt/β-catenin pathway in growth of the caudal forebrain. We present TCF/LEF activities in both embryonic and neural stem cells and discuss how alterations of this pathway could lead to tumors.
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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