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Updated: Oct 26, 2025

Identification of Transcription Factor Regulators using Medium-Throughput Screening of Arrayed Libraries and a Dual-Luciferase-Based Reporter
Published on: March 27, 2020
Discovery of the first chemical tools to regulate MKK3-mediated MYC activation in cancer
Xuan Yang1, Dacheng Fan1, Aidan Henry Troha2
1Department of Pharmacology and Chemical Biology, Emory University School of Medicine, Emory University, Atlanta, GA, USA; Emory Chemical Biology Discovery Center, Emory University School of Medicine, Emory University, Atlanta, GA, USA.
Abstract:
The transcription master regulator MYC plays an essential role in regulating major cellular programs and is a well-established therapeutic target in cancer. However, MYC targeting for drug discovery is challenging. New therapeutic approaches to control MYC-dependent malignancy are urgently needed. The mitogen-activated protein kinase kinase 3 (MKK3) binds and activates MYC in different cell types, and disruption of MKK3-MYC protein-protein interaction may provide a new strategy to target MYC-driven programs. However, there is no perturbagen available to interrogate and control this signaling arm. In this study, we assessed the drugability of the MKK3-MYC complex and discovered the first chemical tool to regulate MKK3-mediated MYC activation. We have designed a short 44-residue inhibitory peptide and developed a cell lysate-based time-resolved fluorescence resonance energy transfer (TR-FRET) assay to discover the first small molecule MKK3-MYC PPI inhibitor. We have optimized and miniaturized the assay into an ultra-high-throughput screening (uHTS) 1536-well plate format. The pilot screen of ~6,000 compounds of a bioactive chemical library followed by multiple secondary and orthogonal assays revealed a quinoline derivative SGI-1027 as a potent inhibitor of MKK3-MYC PPI. We have shown that SGI-1027 disrupts the MKK3-MYC complex in cells and in vitro and inhibits MYC transcriptional activity in colon and breast cancer cells. In contrast, SGI-1027 does not inhibit MKK3 kinase activity and does not interfere with well-known MKK3-p38 and MYC-MAX complexes. Together, our studies demonstrate the drugability of MKK3-MYC PPI, provide the first chemical tool to interrogate its biological functions, and establish a new uHTS assay to enable future discovery of potent and selective inhibitors to regulate this oncogenic complex.
Insights
Researchers discovered SGI-1027, the first small molecule inhibitor targeting the MYC-MKK3 protein-protein interaction (PPI) crucial for cancer. This breakthrough offers a new strategy for MYC-driven cancer therapy.
Area of Science:
- Oncology
- Molecular Biology
- Drug Discovery
Background:
- The MYC oncoprotein is a key regulator of cellular processes and a significant cancer target.
- Targeting MYC is challenging, necessitating novel therapeutic strategies for MYC-driven malignancies.
- The MKK3-MYC interaction is a potential target, but lacks specific chemical tools for investigation.
Purpose of the Study:
- To assess the drugability of the MKK3-MYC protein-protein interaction (PPI).
- To discover the first chemical tool to modulate MKK3-mediated MYC activation.
- To develop and validate a high-throughput screening assay for MKK3-MYC PPI inhibitors.
Main Methods:
- Designed a 44-residue inhibitory peptide.
- Developed a time-resolved fluorescence resonance energy transfer (TR-FRET) assay for MKK3-MYC PPI.
- Optimized the assay into an ultra-high-throughput screening (uHTS) format (1536-well).
- Screened a bioactive chemical library (~6,000 compounds) followed by secondary assays.
Main Results:
- Identified SGI-1027, a quinoline derivative, as a potent MKK3-MYC PPI inhibitor.
- SGI-1027 disrupts the MKK3-MYC complex in vitro and in cells.
- Inhibited MYC transcriptional activity in colon and breast cancer cells.
- SGI-1027 showed selectivity, not affecting MKK3 kinase activity or MKK3-p38 and MYC-MAX complexes.
Conclusions:
- The MKK3-MYC PPI is druggable.
- SGI-1027 is the first chemical tool to interrogate MKK3-MYC interactions.
- A novel uHTS assay was established for discovering selective inhibitors of this oncogenic complex.
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