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Updated: Jun 19, 2026

Induction and Analysis of Epithelial to Mesenchymal Transition
Published on: August 27, 2013
Hypoxia, Snail and incomplete epithelial-mesenchymal transition in breast cancer
K Lundgren1, B Nordenskjöld, G Landberg
1Department of Laboratory Medicine, Center for Molecular Pathology, Malmö University Hospital, Lund University, Malmö SE-205 02, Sweden.
Background:
Hypoxia is an element of the tumour microenvironment that impacts upon numerous cellular factors linked to clinical aggressiveness in cancer. One such factor, Snail, a master regulator of the epithelial-mesenchymal transition (EMT), has been implicated in key tumour biological processes such as invasion and metastasis. In this study we set out to investigate regulation of EMT in hypoxia, and the importance of Snail in cell migration and clinical outcome in breast cancer.
Methods:
Four breast cancer cell lines were exposed to 0.1% oxygen and expression of EMT markers was monitored. The migratory ability was analysed following Snail overexpression and silencing. Snail expression was assessed in 500 tumour samples from premenopausal breast cancer patients, randomised to either 2 years of tamoxifen or no adjuvant treatment.
Results:
Exposure to 0.1% oxygen resulted in elevated levels of Snail protein, along with changes in vimentin and E-cadherin expression, and in addition increased migration of MDA-MB-468 cells. Overexpression of Snail increased the motility of MCF-7, T-47D and MDA-MB-231 cells, whereas silencing of the protein resulted in decreased migratory propensity of MCF-7, MDA-MB-468 and MDA-MB-231 cells. Moreover, nuclear Snail expression was associated with tumours of higher grade and proliferation rate, but not with disease recurrence. Interestingly, Snail negativity was associated with impaired tamoxifen response (P=0.048).
Conclusions:
Our results demonstrate that hypoxia induces Snail expression but generally not a migratory phenotype, suggesting that hypoxic cells are only partially pushed towards EMT. Furthermore, our study supports the link between Snail and clinically relevant features and treatment response.
Insights
Hypoxia increases Snail protein in breast cancer cells, impacting cell migration and tamoxifen treatment response. Snail expression correlates with tumor grade but not recurrence, suggesting a partial role in epithelial-mesenchymal transition.
Area of Science:
- Oncology
- Cancer Biology
- Molecular Biology
Background:
- Hypoxia, a hallmark of the tumor microenvironment, influences cancer aggressiveness.
- Snail, a key regulator of epithelial-mesenchymal transition (EMT), is implicated in cancer invasion and metastasis.
Purpose of the Study:
- Investigate hypoxia's regulation of EMT in breast cancer.
- Determine the role of Snail in cell migration and its association with clinical outcomes.
Main Methods:
- Breast cancer cell lines were exposed to hypoxia (0.1% oxygen) to monitor EMT markers.
- Snail's effect on cell migration was assessed via overexpression and silencing.
- Snail expression was analyzed in 500 premenopausal breast cancer patient tumor samples.
Main Results:
- Hypoxia elevated Snail protein and altered EMT markers, increasing migration in some cell lines.
- Snail overexpression enhanced, while silencing reduced, cell motility.
- Nuclear Snail correlated with higher tumor grade and proliferation but not recurrence.
- Snail negativity was linked to poorer tamoxifen response (P=0.048).
Conclusions:
- Hypoxia induces Snail expression, partially promoting EMT and migration.
- Snail is linked to clinically relevant breast cancer features and treatment response, particularly tamoxifen efficacy.
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