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Methylsulfonylmethane suppresses breast cancer growth by down-regulating STAT3 and STAT5b pathways
Eun Joung Lim1, Dae Young Hong, Jin Hee Park
1Department of Pathology, School of Medicine, and Institute of Biomedical Science and Technology, Konkuk University Glocal Campus, Seoul, South Korea.
Abstract:
Breast cancer is the most aggressive form of all cancers, with high incidence and mortality rates. The purpose of the present study was to investigate the molecular mechanism by which methylsulfonylmethane (MSM) inhibits breast cancer growth in mice xenografts. MSM is an organic sulfur-containing natural compound without any toxicity. In this study, we demonstrated that MSM substantially decreased the viability of human breast cancer cells in a dose-dependent manner. MSM also suppressed the phosphorylation of STAT3, STAT5b, expression of IGF-1R, HIF-1α, VEGF, BrK, and p-IGF-1R and inhibited triple-negative receptor expression in receptor-positive cell lines. Moreover, MSM decreased the DNA-binding activities of STAT5b and STAT3, to the target gene promoters in MDA-MB 231 or co-transfected COS-7 cells. We confirmed that MSM significantly decreased the relative luciferase activities indicating crosstalk between STAT5b/IGF-1R, STAT5b/HSP90α, and STAT3/VEGF. To confirm these findings in vivo, xenografts were established in Balb/c athymic nude mice with MDA-MB 231 cells and MSM was administered for 30 days. Concurring to our in vitro analysis, these xenografts showed decreased expression of STAT3, STAT5b, IGF-1R and VEGF. Through in vitro and in vivo analysis, we confirmed that MSM can effectively regulate multiple targets including STAT3/VEGF and STAT5b/IGF-1R. These are the major molecules involved in tumor development, progression, and metastasis. Thus, we strongly recommend the use of MSM as a trial drug for treating all types of breast cancers including triple-negative cancers.
Insights
Methylsulfonylmethane (MSM) significantly inhibits breast cancer growth by targeting key molecules like STAT3 and IGF-1R. This natural compound shows promise as a potential treatment for various breast cancer types, including triple-negative.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- Breast cancer is a leading cause of cancer mortality.
- Identifying novel therapeutic agents with minimal toxicity is crucial.
- Methylsulfonylmethane (MSM) is a natural organic sulfur compound with a known safety profile.
Purpose of the Study:
- To investigate the molecular mechanisms by which MSM inhibits breast cancer growth.
- To evaluate the efficacy of MSM in preclinical models of breast cancer.
Main Methods:
- In vitro studies using human breast cancer cell lines to assess cell viability and molecular targets.
- Analysis of signaling pathways, including STAT3, STAT5b, IGF-1R, HIF-1α, and VEGF.
- In vivo xenograft studies in mice treated with MSM to validate molecular findings.
Main Results:
- MSM dose-dependently decreased breast cancer cell viability.
- MSM suppressed key signaling pathways (STAT3, STAT5b, IGF-1R, VEGF) and DNA-binding activities in vitro.
- MSM administration in vivo reduced tumor growth and expression of target molecules.
Conclusions:
- MSM effectively inhibits breast cancer growth by regulating multiple critical molecular targets.
- MSM demonstrates potential as a therapeutic agent for breast cancer, including triple-negative subtypes.
- Further clinical investigation of MSM for breast cancer treatment is warranted.
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