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Highly Expressed FOXF1 Inhibit Non-Small-Cell Lung Cancer Growth via Inducing Tumor Suppressor and G1-Phase
Chia-Yu Wu1,2, Chun-Hao Chan3,4, Navneet Kumar Dubey3,4
1Division of Oral and Maxillofacial Surgery, Department of Dentistry, Taipei Medical University Hospital, Taipei 11031, Taiwan.
Abstract:
Cancer pathogenesis results from genetic alteration-induced high or low transcriptional programs, which become highly dependent on regulators of gene expression. However, their role in progressive regulation of non-small-cell lung cancer (NSCLC) and how these dependencies may offer opportunities for novel therapeutic options remain to be understood. Previously, we identified forkhead box F1 (FOXF1) as a reprogramming mediator which leads to stemnesss when mesenchymal stem cells fuse with lung cancer cells, and we now examine its effect on lung cancer through establishing lowly and highly expressing FOXF1 NSCLC engineered cell lines. Higher expression of FOXF1 was enabled in cell lines through lentiviral transduction, and their viability, proliferation, and anchorage-dependent growth was assessed. Flow cytometry and Western blot were used to analyze cellular percentage in cell-cycle phases and levels of cellular cyclins, respectively. In mice, tumorigenic behavior of FOXF1 was investigated. We found that FOXF1 was downregulated in lung cancer tissues and cancer cell lines. Cell proliferation and ability of migration, anchorage-independent growth, and transformation were inhibited in H441-FOXF1H and H1299-FOXF1H, with upregulated tumor suppressor p21 and suppressed cellular cyclins, leading to cell-cycle arrest at the gap 1 (G1) phase. H441-FOXF1H and H1299-FOXF1H injected mice showed reduced tumor size. Conclusively, highly expressing FOXF1 inhibited NSCLC growth via activating tumor suppressor p21 and G1 cell-cycle arrest, thus offering a potentially novel therapeutic strategy for lung cancer.
Insights
High expression of forkhead box F1 (FOXF1) suppresses non-small-cell lung cancer (NSCLC) growth by activating the tumor suppressor p21 and inducing G1 cell-cycle arrest, suggesting FOXF1 as a potential therapeutic target for lung cancer.
Area of Science:
- Oncology
- Molecular Biology
- Gene Regulation
Background:
- Non-small-cell lung cancer (NSCLC) progression is linked to altered gene expression programs dependent on gene regulators.
- The role of these regulators in NSCLC and their therapeutic potential require further investigation.
- Forkhead box F1 (FOXF1) was previously identified as a mediator of stemness in cell fusion events.
Purpose of the Study:
- To investigate the effect of forkhead box F1 (FOXF1) expression on non-small-cell lung cancer (NSCLC) progression.
- To determine if FOXF1 can be a therapeutic target for NSCLC.
Main Methods:
- Established NSCLC cell lines with engineered low and high FOXF1 expression via lentiviral transduction.
- Assessed cell viability, proliferation, migration, and anchorage-independent growth.
- Utilized flow cytometry and Western blot to analyze cell-cycle phases and cyclin levels.
- Investigated tumorigenic behavior in mouse models.
Main Results:
- FOXF1 was found to be downregulated in NSCLC tissues and cell lines.
- High FOXF1 expression inhibited NSCLC cell proliferation, migration, and anchorage-independent growth.
- Upregulation of tumor suppressor p21 and suppression of cellular cyclins led to G1 cell-cycle arrest.
- Tumor growth was significantly reduced in mice injected with high FOXF1-expressing cells.
Conclusions:
- Elevated FOXF1 expression inhibits NSCLC growth through p21 activation and G1 cell-cycle arrest.
- FOXF1 acts as a tumor suppressor in NSCLC.
- FOXF1 represents a potential novel therapeutic strategy for lung cancer treatment.
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