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Photoproximity labeling of c-Myc reveals SLK as a cancer specific co-regulator
Ryan R Milione1,2, Feifei Tong1,2, Kelsey L Wolfe2,3
1Department of Chemistry, Wertheim UF Scripps, Jupiter, Florida 33458, USA.
Abstract:
Transcription factors (TFs) have long been aspirational therapeutic targets for the treatment of diseases, as their dysregulation is a common mechanism for altered cell states. Despite this, many TFs implicated in disease have disordered structures and lack canonical binding pockets, rendering them non-trivial targets for small molecule-based therapies. Directly inhibiting TF function has proven difficult, but indirect inhibition by targeting the effector molecules that modulate TF function is a promising, yet underexplored, alternative approach. Here we report a strategy for capturing cancer-specific protein-protein interactions using context-dependent μMap photoproximity labeling. Using an intein-based method for catalyst conjugation in biochemically intact nuclei, we demonstrate that we can capture unique protein interactomes of c-Myc in healthy and cancerous prostate cell lines, and that these unique interactors can be mined to identify druggable vulnerabilities. We find that a cancer specific Myc interactor, SLK, selectively promotes c-Myc stabilization at the protein level, drives epithelial morphology, and is essential for tumorigenesis, validating it as a viable therapeutic target. Importantly, this stabilization is driven by a change in SLK splicing rather than expression at the protein or RNA levels. Furthermore, analysis of cancer patient data shows a strong correlation between this splice isoform and expression of c-Myc targets, suggesting this novel regulatory axis is operative across human cancer.
Insights
Researchers identified a novel strategy to target cancer-driving transcription factors (TFs). They discovered that targeting a specific Myc interactor, SLK, through its splice variant, can inhibit cancer growth, offering a new therapeutic approach.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- Transcription factors (TFs) are crucial in disease but challenging therapeutic targets due to disordered structures.
- Direct TF inhibition is difficult; targeting effector molecules offers an alternative strategy.
Purpose of the Study:
- To develop a method for capturing cancer-specific protein-protein interactions of TFs.
- To identify novel druggable targets by analyzing TF interactomes.
Main Methods:
- Utilized context-dependent μMap photoproximity labeling to capture protein interactions within intact nuclei.
- Employed an intein-based method for catalyst conjugation.
- Analyzed protein and RNA expression, splicing patterns, and patient data.
Main Results:
- Successfully captured unique c-Myc interactomes in healthy and cancerous prostate cells.
- Identified SLK as a cancer-specific Myc interactor that stabilizes c-Myc and promotes tumorigenesis.
- Demonstrated that SLK's role in c-Myc stabilization is driven by altered splicing, not expression levels.
Conclusions:
- SLK, particularly its splice variant, is a viable therapeutic target for cancers driven by c-Myc.
- A novel regulatory axis involving SLK splicing and c-Myc activity is implicated in human cancers.
- Photoproximity labeling in intact nuclei is effective for discovering cancer-specific TF interactions and vulnerabilities.
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