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Targeting FOXM1 reshapes antitumor immunity to attenuate small cell lung cancer progression
Md Arafat Khan1, Parvez Khan1, Mahek Fatima1
1Department of Biochemistry and Molecular Biology, University of Nebraska Medical Center, Omaha, NE-68198, USA.
Abstract:
Small cell lung cancer (SCLC) is a lethal lung malignancy, which is associated with distant metastasis and chemoresistance. Due to the limited availability of targeted therapies, identifying a potential therapeutic target is a pressing unmet need in SCLC. Single-cell and bulk-transcriptomic datasets were analyzed that revealed FOXM1 as a potential targeting candidate in SCLC. High FOXM1 expression was observed in human and murine SCLC tissues and cell lines. Interestingly, chemoresistant (CR) SCLC cells exhibited substantially higher FOXM1 expression compared to naïve SCLC. Furthermore, FOXM1 inhibition in combination with platinum-based chemotherapy showed synergistic anticancer effects in vitro and in vivo xenograft and spontaneous (RPM: RB1fl/fl; TP53 fl/fl; LSL-MYCT58A) mouse models of SCLC. Mechanistically, RNA-seq analysis revealed that FOXM1 inhibition altered the Aurora Kinase B (AURKB) signaling pathway. Notably, FOXM1 inhibition enhanced T cell activation, supported differentiation of CD8+ T cells, and T cell-mediated killing of SCLC cells. Additionally, FOXM1 inhibition enhanced CD8+ T cell and macrophage recruitment in the tumor microenvironment (TME) of immunocompetent RPM model. This study demonstrates that FOXM1 targeting small molecule inhibitors (FOXM1i) has the potential to be a novel therapeutic strategy to combat SCLC progression, including chemotherapeutic resistance and reshaping the anti-tumor immune response.
Insights
Targeting FOXM1 shows promise for treating small cell lung cancer (SCLC). Inhibiting FOXM1 can overcome chemoresistance and enhance anti-tumor immunity in SCLC models.
Area of Science:
- Oncology
- Molecular Biology
- Immunology
Background:
- Small cell lung cancer (SCLC) is aggressive, characterized by metastasis and chemoresistance.
- Limited targeted therapies highlight the need for novel therapeutic strategies in SCLC.
- FOXM1 has emerged as a potential therapeutic target in SCLC.
Purpose of the Study:
- To investigate the role of FOXM1 in SCLC progression and chemoresistance.
- To evaluate the therapeutic potential of FOXM1 inhibition in SCLC.
Main Methods:
- Analysis of single-cell and bulk transcriptomic datasets.
- In vitro and in vivo studies using SCLC cell lines and mouse models.
- RNA-sequencing to elucidate molecular mechanisms.
- Assessment of immune cell responses and tumor microenvironment.
Main Results:
- FOXM1 expression is elevated in human and murine SCLC, particularly in chemoresistant cells.
- FOXM1 inhibition combined with chemotherapy demonstrated synergistic anticancer effects.
- FOXM1 inhibition modulated the Aurora Kinase B (AURKB) pathway.
- FOXM1 inhibition enhanced T cell activation, differentiation, and tumor cell killing.
- FOXM1 inhibition promoted CD8+ T cell and macrophage infiltration in the tumor microenvironment.
Conclusions:
- FOXM1 is a critical driver of SCLC progression and chemoresistance.
- Targeting FOXM1 with small molecule inhibitors (FOXM1i) represents a potential therapeutic strategy for SCLC.
- FOXM1 inhibition can overcome chemoresistance and reshape the anti-tumor immune response in SCLC.
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