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Distinct DNA binding sites contribute to the TCF transcriptional switch in C. elegans and Drosophila
Chandan Bhambhani1, Aditi J Ravindranath1, Remco A Mentink2
1Department of Molecular, Cellular and Developmental Biology, University of Michigan, Ann Arbor, Michigan, United States of America.
Abstract:
Regulation of gene expression by signaling pathways often occurs through a transcriptional switch, where the transcription factor responsible for signal-dependent gene activation represses the same targets in the absence of signaling. T-cell factors (TCFs) are transcription factors in the Wnt/ß-catenin pathway, which control numerous cell fate specification events in metazoans. The TCF transcriptional switch is mediated by many co-regulators that contribute to repression or activation of Wnt target genes. It is typically assumed that DNA recognition by TCFs is important for target gene location, but plays no role in the actual switch. TCF/Pangolin (the fly TCF) and some vertebrate TCF isoforms bind DNA through two distinct domains, a High Mobility Group (HMG) domain and a C-clamp, which recognize DNA motifs known as HMG and Helper sites, respectively. Here, we demonstrate that POP-1 (the C. elegans TCF) also activates target genes through HMG and Helper site interactions. Helper sites enhanced the ability of a synthetic enhancer to detect Wnt/ß-catenin signaling in several tissues and revealed an unsuspected role for POP-1 in regulating the C. elegans defecation cycle. Searching for HMG-Helper site clusters allowed the identification of a new POP-1 target gene active in the head muscles and gut. While Helper sites and the C-clamp are essential for activation of worm and fly Wnt targets, they are dispensable for TCF-dependent repression of targets in the absence of Wnt signaling. These data suggest that a fundamental change in TCF-DNA binding contributes to the transcriptional switch that occurs upon Wnt stimulation.
Insights
The Wnt/ß-catenin pathway uses T-cell factors (TCFs) to regulate gene expression. This study shows TCF DNA binding, specifically Helper sites, is crucial for activating Wnt targets, not repressing them.
Area of Science:
- Molecular Biology
- Developmental Biology
- Genetics
Background:
- Signaling pathways regulate gene expression via transcriptional switches.
- T-cell factors (TCFs) are key transcription factors in the Wnt/ß-catenin pathway, controlling cell fate.
- TCF DNA binding was thought to be for localization, not the switch itself.
Purpose of the Study:
- To investigate the role of TCF DNA binding domains (HMG and C-clamp) in Wnt/ß-catenin signaling.
- To determine if DNA binding is involved in the transcriptional switch mechanism.
- To identify new TCF target genes and functions.
Main Methods:
- Studied POP-1 (C. elegans TCF) interactions with HMG and Helper DNA sites.
- Utilized synthetic enhancers to test Wnt/ß-catenin signaling detection.
- Searched for HMG-Helper site clusters to identify new target genes.
Main Results:
- POP-1 activates target genes via HMG and Helper site interactions.
- Helper sites enhance Wnt/ß-catenin signaling detection and revealed POP-1's role in the defecation cycle.
- Identified a new POP-1 target gene in head muscles and gut.
- Helper sites and C-clamp are essential for Wnt target activation but not repression.
Conclusions:
- TCF DNA binding, particularly Helper sites, is critical for Wnt target gene activation.
- A change in TCF DNA binding contributes to the transcriptional switch upon Wnt stimulation.
- This provides new insights into Wnt pathway regulation and TCF function.
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