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Development of a Human Preclinical Model of Osteoclastogenesis from Peripheral Blood Monocytes Co-cultured with Breast Cancer Cell Lines
Published on: September 13, 2017
Oncostatin M induces the differentiation of breast cancer cells
A M Douglas1, S L Grant, G A Goss
1Rotary Bone Marrow Research Laboratory, Royal Melbourne Hospital, Parkville, Australia. douglas@wehi.edu.au
Abstract:
We have recently described the action of Oncostatin M (OSM) to inhibit the proliferation of breast cancer cells. In this study we examined the action of OSM on 2 breast cancer cell lines to further characterize the nature of OSM inhibition of cellular proliferation. Treatment with OSM for 6 days resulted in an approximately 2- to 5-fold decrease in cell number, which was independent of estrogen receptor status. Consistent with this, colony formation was reduced to approximately 50% when cells were exposed to OSM in primary agar cultures. Clonogenicity was further inhibited following 7 days treatment with OSM in monolayer cultures: the total number of clonogenic cells was suppressed approximately 10-fold. Analysis of cell cycle status in OSM-treated cells demonstrated a 40% reduction in the proportion of cells in S phase within 12 hr, with an increase in cells in G0/G1. After 6 days, there was a 10-fold reduction in the absolute number of cells in S phase in OSM-treated cultures. These changes were associated with striking changes in cellular morphology, including disruption of intercellular junctions and the production of lipid droplets. There was a 5-fold increase of c-fos and c-myc mRNA within 30 min of commencing treatment with OSM. In addition, in the ER positive cells there was a decrease in ER mRNA (evident within approximately 2 hr) and ER protein expression following treatment with OSM. Conversely, there was a 5-fold increase in epidermal growth factor receptor (EGFR) mRNA within 4 hr, and a 2.5-fold rise in mRNA for transforming growth factor alpha (TGF alpha). Thus, the inhibition of breast cancer cells by OSM was associated with decreased clonogenicity, a decrease in S phase cells and a variety of phenotypic changes, all consistent with the induction of differentiation.
Insights
Oncostatin M (OSM) significantly inhibits breast cancer cell proliferation and clonogenicity, regardless of estrogen receptor status. This action involves cell cycle arrest and phenotypic changes indicative of cell differentiation.
Area of Science:
- Oncology
- Cell Biology
- Molecular Biology
Background:
- Oncostatin M (OSM) has been identified as a factor that inhibits breast cancer cell proliferation.
- Further characterization of OSM's mechanism of action is crucial for understanding its therapeutic potential.
Purpose of the Study:
- To investigate the effects of Oncostatin M on breast cancer cell proliferation and clonogenicity.
- To elucidate the molecular and cellular changes induced by OSM treatment in breast cancer cells.
Main Methods:
- Treatment of two breast cancer cell lines with OSM for varying durations (6-7 days).
- Assessment of cell number, colony formation in agar, and clonogenicity in monolayer cultures.
- Analysis of cell cycle distribution (S phase, G0/G1) using flow cytometry.
- Evaluation of morphological changes, including intercellular junctions and lipid droplet formation.
- Quantification of specific gene mRNA expression (c-fos, c-myc, ER, EGFR, TGF-alpha) and ER protein levels.
Main Results:
- OSM treatment reduced breast cancer cell number (2-5 fold) and colony formation (approx. 50-10 fold), independent of estrogen receptor (ER) status.
- OSM induced cell cycle arrest, with a decrease in S phase cells and an increase in G0/G1 phase cells.
- Morphological changes included disrupted intercellular junctions and lipid droplet accumulation.
- OSM modulated gene expression, increasing c-fos, c-myc, EGFR, and TGF-alpha mRNA, while decreasing ER mRNA and protein in ER-positive cells.
Conclusions:
- Oncostatin M effectively inhibits breast cancer cell proliferation and clonogenicity.
- OSM-induced effects are associated with cell cycle arrest, morphological alterations, and changes in gene expression patterns.
- These findings suggest that OSM promotes differentiation in breast cancer cells.
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