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Testing Targeted Therapies in Cancer using Structural DNA Alteration Analysis and Patient-Derived Xenografts
Published on: July 25, 2020
Targeting p53-Driven FOXM1 Suppresses Tumor Growth and Synergistically Sensitizes to Chemotherapy in Triple-Negative
Sayra Dilmac1,2, Nermin Kahraman1, Ferah Comert Onder3
1Department of Nanomedicine, Houston Methodist Research Institute, Houston, TX 77030, USA.
Abstract:
Triple-negative breast cancer (TNBC) is characterized by a lack of estrogen, progesterone, and HER2 receptors; an aggressive phenotype; high rates of early relapse and metastasis; and the worst mortality rates among all breast cancer subtypes. Currently, there is no effective curative targeted therapy for TNBC and chemotherapy remains the primary treatment for TNBC. Therefore, there is a critical need to develop highly effective, novel therapies to improve patient survival. We previously validated FOXM1, a proto-oncogenic transcription factor, for the first time as a potential molecular target in TNBC through genetic knockdown studies in mice. We show that FOXM1 expression is associated with shorter patient survival and is a marker of poor prognosis. There is no FDA-approved FOXM1 inhibitor. We found that patients with TP53 mutations have dramatically higher FOXM1 expression, indicating that widespread TP53 mutations detected in about 80% of TNBC patients are the major driver of FOXM1 overexpression in TNBC patients. We identified its binding ability using an in silico study, and found it to be a well-known FOXM1 inhibitor that suppresses TNBC cell proliferation, migration, and invasion, and induces apoptosis. In vivo studies in mice bearing TNBC tumors demonstrated that treatment with a novel FOXM1 inhibitor incorporated in single-lipid nanoparticles suppressed the growth of TNBC tumor xenografts. In conclusion, our findings suggest that the novel FOXM1 inhibitor represents a potent and safe therapeutic strategy with significant potential for the treatment of other FOXM1-driven cancers including TNBC that currently have limited treatment options.
Insights
Triple-negative breast cancer (TNBC) is aggressive and lacks targeted therapies. A novel FOXM1 inhibitor shows promise in suppressing TNBC growth and metastasis, offering a new therapeutic avenue.
Area of Science:
- Oncology
- Molecular Biology
- Drug Discovery
Background:
- Triple-negative breast cancer (TNBC) is an aggressive subtype with poor prognosis and limited treatment options.
- FOXM1, a proto-oncogenic transcription factor, is overexpressed in TNBC and linked to poor patient survival.
- TP53 mutations, common in TNBC, drive FOXM1 overexpression.
Purpose of the Study:
- To investigate FOXM1 as a therapeutic target in TNBC.
- To evaluate a novel FOXM1 inhibitor for its efficacy in preclinical TNBC models.
Main Methods:
- Genetic knockdown studies in mice to validate FOXM1 as a target.
- In silico analysis to identify FOXM1 inhibitors.
- In vitro studies assessing the inhibitor's effect on TNBC cell proliferation, migration, invasion, and apoptosis.
- In vivo studies using TNBC tumor xenografts in mice treated with FOXM1 inhibitor-loaded nanoparticles.
Main Results:
- FOXM1 expression correlates with shorter patient survival in TNBC.
- A novel FOXM1 inhibitor effectively suppressed TNBC cell proliferation, migration, and invasion, while inducing apoptosis in vitro.
- In vivo administration of the FOXM1 inhibitor in lipid nanoparticles significantly inhibited TNBC tumor xenograft growth in mice.
Conclusions:
- The novel FOXM1 inhibitor demonstrates potent and safe therapeutic potential for TNBC.
- Targeting FOXM1 offers a promising strategy for treating TNBC and other FOXM1-driven cancers.
- This approach addresses the critical need for novel therapies in TNBC.
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