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A First-in-Class TWIST1 Inhibitor with Activity in Oncogene-Driven Lung Cancer
Zachary A Yochum1,2, Jessica Cades3,4,5, Lucia Mazzacurati2
1Department of Pharmacology and Chemical Biology, University of Pittsburgh, Pittsburgh, Pennsylvania.
Abstract:
TWIST1, an epithelial-mesenchymal transition (EMT) transcription factor, is critical for oncogene-driven non-small cell lung cancer (NSCLC) tumorigenesis. Given the potential of TWIST1 as a therapeutic target, a chemical-bioinformatic approach using connectivity mapping (CMAP) analysis was used to identify TWIST1 inhibitors. Characterization of the top ranked candidates from the unbiased screen revealed that harmine, a harmala alkaloid, inhibited multiple TWIST1 functions, including single-cell dissemination, suppression of normal branching in 3D epithelial culture, and proliferation of oncogene driver-defined NSCLC cells. Harmine treatment phenocopied genetic loss of TWIST1 by inducing oncogene-induced senescence or apoptosis. Mechanistic investigation revealed that harmine targeted the TWIST1 pathway through its promotion of TWIST1 protein degradation. As dimerization is critical for TWIST1 function and stability, the effect of harmine on specific TWIST1 dimers was examined. TWIST1 and its dimer partners, the E2A proteins, which were found to be required for TWIST1-mediated functions, regulated the stability of the other heterodimeric partner posttranslationally. Harmine preferentially promoted degradation of the TWIST1-E2A heterodimer compared with the TWIST-TWIST1 homodimer, and targeting the TWIST1-E2A heterodimer was required for harmine cytotoxicity. Finally, harmine had activity in both transgenic and patient-derived xenograft mouse models of KRAS-mutant NSCLC. These studies identified harmine as a first-in-class TWIST1 inhibitor with marked anti-tumor activity in oncogene-driven NSCLC including EGFR mutant, KRAS mutant and MET altered NSCLC.Implications: TWIST1 is required for oncogene-driven NSCLC tumorigenesis and EMT; thus, harmine and its analogues/derivatives represent a novel therapeutic strategy to treat oncogene-driven NSCLC as well as other solid tumor malignancies. Mol Cancer Res; 15(12); 1764-76. ©2017 AACR.
Insights
Harmine inhibits TWIST1, a key factor in lung cancer development. This new TWIST1 inhibitor shows anti-tumor activity in preclinical models, offering a potential new therapy for non-small cell lung cancer (NSCLC).
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- TWIST1 is a crucial transcription factor driving epithelial-mesenchymal transition (EMT) and tumorigenesis in oncogene-driven non-small cell lung cancer (NSCLC).
- Targeting TWIST1 presents a potential therapeutic strategy for NSCLC, necessitating the identification of effective inhibitors.
Purpose of the Study:
- To identify and characterize novel TWIST1 inhibitors using a chemical-bioinformatic approach.
- To evaluate the anti-tumor activity and mechanism of action of identified inhibitors in preclinical models of NSCLC.
Main Methods:
- Connectivity Mapping (CMAP) analysis was employed to screen for potential TWIST1 inhibitors.
- In vitro assays assessed the effects of identified compounds on TWIST1 functions, cell proliferation, senescence, and apoptosis.
- Mechanistic studies investigated TWIST1 protein degradation, dimerization, and the role of TWIST1-E2A heterodimers.
- In vivo efficacy was evaluated in transgenic and patient-derived xenograft mouse models of KRAS-mutant NSCLC.
Main Results:
- Harmine, a harmala alkaloid, was identified as a potent TWIST1 inhibitor, suppressing NSCLC cell dissemination, proliferation, and branching.
- Harmine treatment induced senescence or apoptosis, phenocopying genetic TWIST1 loss, and promoted TWIST1 protein degradation.
- Harmine preferentially induced degradation of the TWIST1-E2A heterodimer, which was essential for its cytotoxic effects.
- Harmine demonstrated significant anti-tumor activity in preclinical models of EGFR, KRAS, and MET-altered NSCLC.
Conclusions:
- Harmine is a first-in-class TWIST1 inhibitor with marked anti-tumor activity in oncogene-driven NSCLC.
- Targeting the TWIST1-E2A heterodimer is a critical mechanism for harmine's efficacy.
- Harmine and its derivatives represent a promising therapeutic strategy for NSCLC and other solid tumors driven by oncogenes.
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