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.

Cells
|July 27, 2026
PubMed

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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