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Updated: Feb 13, 2026

An Orthotopic Mouse Model of Spontaneous Breast Cancer Metastasis
Published on: August 14, 2016
RSK1 promotes murine breast cancer growth and metastasis
Dominika Czaplinska, Monika Gorska, Kamil Mieczkowski
1Department of Molecular Enzymology, Intercollegiate Faculty of Biotechnology, University of Gdansk and Medical University of Gdansk, Poland. rsadej@gumed.edu.pl.
Introduction:
Triple-negative breast cancer (TNBC), representing over 15% of all breast cancers, has a poorer prognosis than other subtypes. There is no effective targeted treatment available for the TNBC sufferers. Ribosomal S6 kinases (RSKs) have been previously proposed as drug targets for TNBC based on observations that 85% of these tumors express activated RSKs.
Materials And Methods:
Herein we examined an involvement of RSK1 (p90 ribosomal S6 kinase 1) in a regulation of TNBC growth and metastatic spread in an animal model, which closely imitates human disease. Mice were inoculated into mammary fat pad with 4T1 cells or their RSK1-depleted variant. We examined tumor growth and formation of pulmonary metastasis. Boyden chamber, wound healing and soft agarose assays were performed to evaluate cells invasion, migration and anchorage-independent growth.
Results:
We found that RSK1 promoted tumor growth and metastasis in vivo. After 35 days all animals inoculated with control cells developed tumors while in the group injected with RSK1-negative cells, there were 75% tumor-bearing mice. Average tumor mass was estimated as 1.16 g and 0.37 g for RSK1-positive vs. -negative samples, respectively (p < 0.0001). Quantification of the macroscopic pulmonary metastases indicated that mice with RSK1-negative tumors developed approximately 85% less metastatic foci on the lung surface (p < 0.001). This has been supported by in vitro data presenting that RSK1 promoted anchorage-independent cell growth and migration. Moreover, RSK1 knock-down corresponded with decreased expression of cell cycle regulating proteins, i.e. cyclin D3, CDK6 and CDK4.
Conclusions:
We provide evidence that RSK1 supports tumor growth and metastatic spread in vivo as well as in vitro migration and survival in non-adherent conditions. Further studies of RSK1 involvement in TNBC progression may substantiate our findings, laying the foundations for development of anti-RSK1-based therapeutic strategies in the management of patients with TNBC.
Insights
Ribosomal S6 kinase 1 (RSK1) drives triple-negative breast cancer (TNBC) growth and metastasis. Inhibiting RSK1 significantly reduced tumor growth and spread in preclinical models, suggesting RSK1 as a potential therapeutic target for TNBC.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Research
Background:
- Triple-negative breast cancer (TNBC) has a poor prognosis and lacks targeted treatments.
- Activated Ribosomal S6 Kinases (RSKs) are present in 85% of TNBC tumors, indicating their potential as drug targets.
Purpose of the Study:
- To investigate the role of RSK1 (p90 ribosomal S6 kinase 1) in TNBC growth and metastasis.
- To evaluate RSK1 as a potential therapeutic target for TNBC.
Main Methods:
- An animal model of TNBC was used, with mice inoculated with either 4T1 cells or RSK1-depleted 4T1 cells.
- Tumor growth, pulmonary metastasis, cell invasion, migration, and anchorage-independent growth were assessed.
- RSK1 knock-down effects on cell cycle proteins were analyzed.
Main Results:
- RSK1 significantly promoted tumor growth and metastasis in vivo.
- RSK1-negative tumors showed a 75% reduction in tumor-bearing mice and an 85% decrease in pulmonary metastases.
- In vitro, RSK1 enhanced anchorage-independent growth and migration, and its knock-down reduced cell cycle proteins (cyclin D3, CDK6, CDK4).
Conclusions:
- RSK1 plays a crucial role in supporting TNBC tumor growth, metastatic spread, and survival.
- Targeting RSK1 may offer a novel therapeutic strategy for managing TNBC patients.
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