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Updated: Jul 6, 2025

Mapping the Structure-Function Relationships of Disordered Oncogenic Transcription Factors Using Transcriptomic Analysis
Published on: June 27, 2020
Overlapping characteristics of weak interactions of two transcriptional regulators with WDR5
Mohammad Ahmad1, Ali Imran1, Liviu Movileanu2
1Department of Physics, Syracuse University, 201 Physics Building, Syracuse, NY 13244-1130, USA.
Abstract:
The WD40 repeat protein 5 (WDR5) is a nuclear hub that critically influences gene expression by interacting with transcriptional regulators. Utilizing the WDR5 binding motif (WBM) site, WDR5 interacts with the myelocytomatosis (MYC), an oncoprotein transcription factor, and the retinoblastoma-binding protein 5 (RbBP5), a scaffolding element of an epigenetic complex. Given the clinical significance of these protein-protein interactions (PPIs), there is a pressing necessity for a quantitative assessment of these processes. Here, we use biolayer interferometry (BLI) to examine interactions of WDR5 with consensus peptide ligands of MYC and RbBP5. We found that both interactions exhibit relatively weak affinities arising from a fast dissociation process. Remarkably, live-cell imaging identified distinctive WDR5 localizations in the absence and presence of full-length binding partners. Although WDR5 tends to accumulate within nucleoli, WBM-mediated interactions with MYC and RbBP5 require their localization outside nucleoli. We utilize fluorescence resonance energy transfer (FRET) microscopy to confirm these weak interactions through a low FRET efficiency of the MYC-WDR5 and RbBP5-WDR5 complexes in living cells. In addition, we evaluate the impact of peptide and small-molecule inhibitors on these interactions. These outcomes form a fundamental basis for further developments to clarify the multitasking role of the WBM binding site of WDR5.
Insights
WD40 repeat protein 5 (WDR5) interacts with MYC and RbBP5. These protein-protein interactions are weak and occur outside the nucleoli, impacting gene expression.
Area of Science:
- Molecular Biology
- Epigenetics
- Cancer Biology
Background:
- WD40 repeat protein 5 (WDR5) is a nuclear protein crucial for gene expression.
- WDR5 interacts with MYC and RbBP5 via its WDR5 binding motif (WBM).
- These interactions are clinically significant, necessitating quantitative assessment.
Purpose of the Study:
- To quantitatively assess the protein-protein interactions (PPIs) between WDR5 and MYC/RbBP5.
- To investigate the localization dynamics of WDR5 and its binding partners in living cells.
- To evaluate the impact of inhibitors on WDR5-mediated interactions.
Main Methods:
- Biolayer interferometry (BLI) to measure binding affinities.
- Live-cell imaging to observe protein localization.
- Fluorescence resonance energy transfer (FRET) microscopy to confirm interactions in situ.
Main Results:
- WDR5 interactions with MYC and RbBP5 peptides exhibit weak affinities due to rapid dissociation.
- WDR5 localizes to nucleoli, but WBM-mediated interactions occur outside nucleoli.
- FRET confirmed weak MYC-WDR5 and RbBP5-WDR5 complex formation in cells.
Conclusions:
- WDR5 interactions with MYC and RbBP5 are characterized by weak affinity and specific localization requirements.
- The WBM site of WDR5 plays a critical role in these context-dependent interactions.
- Findings provide a basis for developing targeted modulators of WDR5 function.
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