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Targeting the Tcf4 G13ANDE17 binding site to selectively disrupt β-catenin/T-cell factor protein-protein interactions
Zheng Huang1, Min Zhang, Shawn D Burton
1Department of Chemistry, Center for Cell and Genome Science, University of Utah , Salt Lake City, Utah 84112-0850, United States.
Abstract:
Selective disruption of protein-protein interactions by small molecules is important for probing the structure and dynamic aspects of cellular network. It can also provide new therapeutic targets. β-Catenin of the canonical Wnt signaling pathway uses the same positively charged groove to bind with T-cell factor (Tcf), cadherin, and adenomatous polysis coli (APC). The extravagant formation of β-catenin/Tcf interactions drives the initiation and progression of many cancers and fibroses, while β-catenin/cadherin and β-catenin/APC interactions are essential for cell-cell adhesion and β-catenin degradation. In this study, a selective binding site that can differentiate β-catenin/Tcf, β-catenin/cadherin, and β-catenin/APC interactions was identified by alanine scanning and biochemical assays. A new peptidomimetic strategy that incorporates SiteMap and multiple-copy simultaneous search was used to design selective small-molecule inhibitors for β-catenin/Tcf interactions. A potent inhibitor was discovered to bind with β-catenin and completely disrupt β-catenin/Tcf interactions. It also exhibits dual selectivity for β-catenin/Tcf over β-catenin/cadherin and β-catenin/APC interactions in both biochemical and cell-based assays. This study provides a proof of concept for designing selective inhibitors for β-catenin/Tcf interactions.
Insights
Researchers developed selective small-molecule inhibitors targeting the β-catenin/T-cell factor interaction, crucial in cancer. This breakthrough offers a new strategy for disrupting cancer-driving pathways while sparing essential cellular functions.
Area of Science:
- Molecular Biology
- Drug Discovery
- Biochemistry
Background:
- Protein-protein interactions are vital for cellular networks and represent therapeutic targets.
- β-Catenin, a key Wnt pathway protein, interacts with T-cell factor (Tcf), cadherin, and adenomatous polyposis coli (APC) via a shared binding site.
- Aberrant β-catenin/Tcf interactions drive cancer and fibrosis, while other interactions are crucial for cell adhesion and protein degradation.
Purpose of the Study:
- To identify a selective binding site differentiating β-catenin interactions.
- To design selective small-molecule inhibitors targeting the β-catenin/Tcf interaction.
- To validate the efficacy and selectivity of designed inhibitors.
Main Methods:
- Alanine scanning and biochemical assays to identify selective binding sites.
- Peptidomimetic strategy using SiteMap and multiple-copy simultaneous search for inhibitor design.
- Biochemical and cell-based assays to evaluate inhibitor potency and selectivity.
Main Results:
- A selective binding site distinguishing β-catenin/Tcf from β-catenin/cadherin and β-catenin/APC interactions was identified.
- A potent small-molecule inhibitor was designed that binds β-catenin and disrupts β-catenin/Tcf interactions.
- The inhibitor demonstrated dual selectivity, inhibiting β-catenin/Tcf interactions over β-catenin/cadherin and β-catenin/APC interactions in vitro and in cells.
Conclusions:
- Selective disruption of specific protein-protein interactions is achievable with small molecules.
- The developed peptidomimetic strategy is effective for designing selective inhibitors.
- This study provides a proof of concept for targeting β-catenin/Tcf interactions therapeutically.
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