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Mapping the Structure-Function Relationships of Disordered Oncogenic Transcription Factors Using Transcriptomic Analysis
Published on: June 27, 2020
Single enantiomer of YK-4-279 demonstrates specificity in targeting the oncogene EWS-FLI1
Julie S Barber-Rotenberg1, Saravana P Selvanathan, Yali Kong
1Department of Oncology, Georgetown University Lombardi Comprehensive Cancer Center, Washington, DC, USA.
Abstract:
Oncogenic fusion proteins, such as EWS-FLI1, are excellent therapeutic targets as they are only located within the tumor. However, there are currently no agents targeted toward transcription factors, which are often considered to be 'undruggable.' A considerable body of evidence is accruing that refutes this claim based upon the intrinsic disorder of transcription factors. Our previous studies show that RNA Helicase A (RHA) enhances the oncogenesis of EWS-FLI1, a putative intrinsically disordered protein. Interruption of this protein-protein complex by small molecule inhibitors validates this interaction as a unique therapeutic target. Single enantiomer activity from a chiral compound has been recognized as strong evidence for specificity in a small molecule-protein interaction. Our compound, YK-4-279, has a chiral center and can be separated into two enantiomers by chiral HPLC. We show that there is a significant difference in activity between the two enantiomers. (S)-YK-4-279 is able to disrupt binding between EWS-FLI1 and RHA in an immunoprecipitation assay and blocks the transcriptional activity of EWS-FLI1, while (R)-YK-4-279 cannot. Enantiospecific effects are also established in cytotoxicity assays and caspase assays, where up to a log-fold difference is seen between (S)-YK-4-279 and the racemic YK-4-279. Our findings indicate that only one enantiomer of our small molecule is able to specifically target a protein-protein interaction. This work is significant for its identification of a single enantiomer effect upon a protein interaction suggesting that small molecule targeting of intrinsically disordered proteins can be specific. Furthermore, proving YK-4-279 has only one functional enantiomer will be helpful in moving this compound towards clinical trials.
Insights
A novel small molecule, YK-4-279, specifically targets the oncogenic EWS-FLI1 and RNA Helicase A (RHA) interaction. Only the (S)-enantiomer effectively disrupts this protein complex, offering a promising therapeutic strategy for certain cancers.
Area of Science:
- Oncology
- Molecular Biology
- Medicinal Chemistry
Background:
- Oncogenic fusion proteins like EWS-FLI1 are tumor-specific targets, but transcription factors are considered 'undruggable.'
- Intrinsically disordered proteins, including EWS-FLI1, present unique therapeutic opportunities.
- RNA Helicase A (RHA) enhances EWS-FLI1 oncogenesis, making their interaction a potential therapeutic target.
Purpose of the Study:
- To investigate the potential of targeting the EWS-FLI1 and RHA protein-protein interaction with small molecule inhibitors.
- To evaluate the specificity and efficacy of the chiral compound YK-4-279 and its enantiomers against this target.
Main Methods:
- Chiral High-Performance Liquid Chromatography (HPLC) was used to separate YK-4-279 into its enantiomers.
- Immunoprecipitation assays were employed to assess the disruption of the EWS-FLI1 and RHA complex.
- Transcriptional activity, cytotoxicity, and caspase assays were performed to evaluate functional effects.
Main Results:
- The (S)-enantiomer of YK-4-279 specifically disrupted the EWS-FLI1 and RHA binding.
- (S)-YK-4-279 effectively blocked EWS-FLI1 transcriptional activity, unlike the (R)-enantiomer.
- Significant enantiospecific differences were observed in cytotoxicity and caspase assays, with (S)-YK-4-279 showing greater activity.
Conclusions:
- Small molecule targeting of intrinsically disordered proteins can be specific, as demonstrated by the enantiospecificity of YK-4-279.
- The (S)-enantiomer of YK-4-279 is a potent and specific inhibitor of the EWS-FLI1-RHA interaction.
- This study validates YK-4-279 as a promising candidate for clinical development in treating cancers driven by EWS-FLI1.
