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Updated: Jul 19, 2025

Inducible and Reversible Dominant-negative DN Protein Inhibition
Published on: January 7, 2019
Recent Progress in Modulation of WD40-Repeat Domain 5 Protein (WDR5): Inhibitors and Degraders
Raju Gurung1, Darlami Om1, Rabin Pun1
1College of Pharmacy, Gachon University, 191 Hambakmoe-ro, Yeonsu-gu, Incheon 21936, Republic of Korea.
Abstract:
WD40-repeat (WDR) domain proteins play a crucial role in mediating protein-protein interactions that sustain oncogenesis in human cancers. One prominent example is the interaction between the transcription factor MYC and its chromatin co-factor, WD40-repeat domain protein 5 (WDR5), which is essential for oncogenic processes. The MYC family of proteins is frequently overexpressed in various cancers and has been validated as a promising target for anticancer therapies. The recruitment of MYC to chromatin is facilitated by WDR5, highlighting the significance of their interaction. Consequently, inhibiting the MYC-WDR5 interaction has been shown to induce the regression of malignant tumors, offering an alternative approach to targeting MYC in the development of anticancer drugs. WDR5 has two protein interaction sites, the "WDR5-binding motif" (WBM) site for MYC interaction and the histone methyltransferases SET1 recognition motif "WDR5-interacting" (WIN) site forming MLL complex. Significant efforts have been dedicated to the discovery of inhibitors that target the WDR5 protein. More recently, the successful application of targeted protein degradation technology has enabled the removal of WDR5. This breakthrough has opened up new avenues for inhibiting the interaction between WDR5 and the binding partners. In this review, we address the recent progress made in targeting WDR5 to inhibit MDR5-MYC and MDR5-MLL1 interactions, including its targeted protein degradation and their potential impact on anticancer drug discovery.
Insights
Targeting WD40-repeat domain protein 5 (WDR5) inhibits cancer-driving interactions like MYC-WDR5. New methods, including targeted protein degradation, offer novel anticancer drug discovery avenues.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- WD40-repeat (WDR) domain proteins are key mediators of protein-protein interactions in cancer.
- The interaction between transcription factor MYC and WD40-repeat domain protein 5 (WDR5) is crucial for oncogenesis.
- MYC overexpression is common in cancers, making the MYC-WDR5 interaction a promising therapeutic target.
Purpose of the Study:
- To review recent advancements in targeting WDR5 to inhibit WDR5-MYC and WDR5-MLL1 interactions.
- To explore the potential of targeted protein degradation of WDR5 in anticancer drug discovery.
Main Methods:
- Review of literature on WDR5 inhibitors and targeted protein degradation strategies.
- Analysis of WDR5's interaction sites (WBM for MYC, WIN for MLL complex).
Main Results:
- Inhibiting the MYC-WDR5 interaction can lead to malignant tumor regression.
- Targeted protein degradation offers a novel approach to disrupt WDR5 interactions.
- WDR5 plays a role in both MYC-driven oncogenesis and MLL complex formation.
Conclusions:
- Targeting WDR5, particularly through protein degradation, presents a promising strategy for developing new anticancer therapies.
- Disrupting WDR5-MYC and WDR5-MLL1 interactions holds significant potential for future cancer treatment development.
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