4.5 Article

Molecular mechanism of Forkhead box M1 inhibition by thiostrepton in breast cancer cells

Journal

ONCOLOGY REPORTS
Volume 42, Issue 3, Pages 953-962

Publisher

SPANDIDOS PUBL LTD
DOI: 10.3892/or.2019.7225

Keywords

Forkhead box M1; molecular dynamics simulations; thiostrepton; senescence; breast cancer

Categories

Funding

  1. Kasetsart University Research and Development Institute (KURDI), Kasetsart University, Bangkok, Thailand
  2. National Research Council of Thailand (NRCT)
  3. Thailand Graduate Institute of Science and Technology (TGIST) [SCA-CO-2561-6950-TH]
  4. Thailand Research Fund through the Royal Golden Jubilee Ph.D. Program [PHD/0204/2559]
  5. TRF [RSA6180021]
  6. Medical Research Council (MRC) [MR/N012097/1]
  7. Cancer Research UK (CRUK) [C37/A12011, C37/A18784]
  8. Breast Cancer Now [2012MayPR070, 2012NovPhD016]
  9. Cancer Research UK Imperial Centre
  10. Imperial Experimental Cancer Medicine Centre (ECMC)
  11. National Institute for Health Research (NIHR) Imperial Biomedical Research Centre (BRC)
  12. MRC [MR/N012097/1] Funding Source: UKRI

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Breast cancer is the most common type of malignancies in women worldwide, and genotoxic chemotherapeutic drugs are effective by causing DNA damage in cancer cells. However, >90% of patients with metastatic cancer are resistant to chemotherapy. The Forkhead box M1 (FOXM1) transcription factor plays a pivotal role in the resistance of breast cancer cells to chemotherapy by promoting DNA damage repair following genotoxic drug treatment. The aim of the present study was to investigate the inhibition of the FOXM1 protein by thiostrepton, a natural antibiotic produced by the Streptomyces species. Experimental studies were designed to examine the effectiveness of thiostrepton in downregulating FOXM1 mRNA expression and activity, leading to senescence and apoptosis of breast cancer cells. The cytotoxicity of thiostrepton in breast cancer was determined using cell viability assay. Additionally, thiostrepton treatment decreased the mRNA expression of cyclin B1 (CCNB1), a downstream target of FOXM1. The present results indicated that thiostrepton inhibited FOXM1 mRNA expression and its effect on CCNB1. Molecular dynamic simulations were performed to study the interactions between FOXM1-DNA and thiostrepton after molecular docking. The results revealed that the possible mechanism underlying the inhibitory effect of thiostrepton on FOXM1 function was by forming a tight complex with the DNA and FOXM1 via its binding domain. Collectively, these results indicated that thiostrepton is a specific and direct inhibitor of the FOXM1 protein in breast cancer. The findings of the present study may lead to the development of novel therapeutic strategies for breast cancer and help overcome resistance to conventional chemotherapeutic drugs.

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