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The FOXM1 Inhibitor RCM-1 Decreases Carcinogenesis and Nuclear β-Catenin
Samriddhi Shukla1, David Milewski1, Arun Pradhan1,2
1Perinatal Institute, Division of Pulmonary Biology, Cincinnati Children's Hospital Medical Center, Cincinnati, Ohio.
Abstract:
The oncogenic transcription factor FOXM1 has been previously shown to play a critical role in carcinogenesis by inducing cellular proliferation in multiple cancer types. A small-molecule compound, Robert Costa Memorial drug-1 (RCM-1), has been recently identified from high-throughput screen as an inhibitor of FOXM1 in vitro and in mouse model of allergen-mediated lung inflammation. In the present study, we examined antitumor activities of RCM-1 using tumor models. Treatment with RCM-1 inhibited tumor cell proliferation as evidenced by increased cell-cycle duration. Confocal imaging of RCM-1-treated tumor cells indicated that delay in cellular proliferation was concordant with inhibition of FOXM1 nuclear localization in these cells. RCM-1 reduced the formation and growth of tumor cell colonies in the colony formation assay. In animal models, RCM-1 treatment inhibited growth of mouse rhabdomyosarcoma Rd76-9, melanoma B16-F10, and human H2122 lung adenocarcinoma. RCM-1 decreased FOXM1 protein in the tumors, reduced tumor cell proliferation, and increased tumor cell apoptosis. RCM-1 decreased protein levels and nuclear localization of β-catenin, and inhibited protein-protein interaction between β-catenin and FOXM1 in cultured tumor cells and in vivo Altogether, our study provides important evidence of antitumor potential of the small-molecule compound RCM-1, suggesting that RCM-1 can be a promising candidate for anticancer therapy.
Insights
The novel compound RCM-1 effectively inhibits tumor growth by targeting the FOXM1 (forkhead box M1) transcription factor. This drug candidate reduces cancer cell proliferation and induces apoptosis, showing promise for future anticancer therapies.
Area of Science:
- Oncology
- Molecular Biology
- Drug Discovery
Background:
- FOXM1 (forkhead box M1) is an oncogenic transcription factor crucial for cell proliferation in various cancers.
- RCM-1 is a small-molecule inhibitor of FOXM1 identified through high-throughput screening.
Purpose of the Study:
- To investigate the antitumor activities of RCM-1 in preclinical tumor models.
- To elucidate the molecular mechanisms underlying RCM-1's anticancer effects.
Main Methods:
- Cell proliferation assays (cell-cycle duration, colony formation).
- Confocal imaging to assess FOXM1 nuclear localization.
- In vivo studies using mouse rhabdomyosarcoma, melanoma, and human lung adenocarcinoma models.
- Western blot analysis for FOXM1 and β-catenin protein levels.
Main Results:
- RCM-1 treatment inhibited tumor cell proliferation and colony formation.
- RCM-1 decreased FOXM1 nuclear localization and protein levels in tumors.
- RCM-1 treatment reduced tumor growth in multiple animal models.
- RCM-1 decreased β-catenin levels and its interaction with FOXM1.
Conclusions:
- RCM-1 demonstrates significant antitumor potential by inhibiting FOXM1 and β-catenin pathways.
- RCM-1 reduces cancer cell proliferation, colony formation, and tumor growth.
- RCM-1 is a promising candidate for the development of novel anticancer therapies.
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