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Differential functions of ERK1 and ERK2 in lung metastasis processes in triple-negative breast cancer
Maria Gagliardi1, Mary Kathryn Pitner1, Jihyun Park1
1Section of Translational Breast Cancer Research, Department of Breast Medical Oncology, The University of Texas MD Anderson Cancer Center, Houston, Texas, USA.
Abstract:
Triple-negative breast cancer (TNBC) is an aggressive form of breast cancer characterized by metastasis, drug resistance and high rates of recurrence. With a lack or targeted therapies, TNBC is challenging to treat and carries a poor prognosis. Patients with TNBC tumors expressing high levels of ERK2 have a poorer prognosis than those with low ERK2-expressing tumors. The MAPK pathway is often found to be highly activated in TNBC, however the precise functions of the ERK isoforms (ERK1 and ERK2) in cancer progression have not been well defined. We hypothesized that ERK2, but not ERK1, promotes the cancer stem cell (CSC) phenotype and metastasis in TNBC. Stable knockdown clones of the ERK1 and ERK2 isoforms were generated in SUM149 and BT549 TNBC cells using shRNA lentiviral vectors. ERK2 knockdown significantly inhibited anchorage-independent colony formation and mammosphere formation, indicating compromised self-renewal capacity. This effect correlated with a reduction in migration and invasion. SCID-beige mice injected via the tail vein with ERK clones were employed to determine metastatic potential. SUM149 shERK2 cells had a significantly lower lung metastatic burden than control mice or mice injected with SUM149 shERK1 cells. The Affymetrix HGU133plus2 microarray platform was employed to identify gene expression changes in ERK isoform knockdown clones. Comparison of gene expression levels between SUM149 cells with ERK2 or ERK1 knockdown revealed differential and in some cases opposite effects on mRNA expression levels. Those changes associated with ERK2 knockdown predominantly altered regulation of CSCs and metastasis. Our findings indicate that ERK2 promotes metastasis and the CSC phenotype in TNBC.
Insights
ERK2 promotes aggressive traits in triple-negative breast cancer (TNBC). Inhibiting ERK2 reduces metastasis and cancer stem cell properties, offering a potential therapeutic target for this challenging disease.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Research
Background:
- Triple-negative breast cancer (TNBC) is aggressive, marked by metastasis, drug resistance, and recurrence.
- Limited targeted therapies exist for TNBC, leading to poor patient prognosis.
- High ERK2 expression correlates with poorer prognosis in TNBC patients.
Purpose of the Study:
- To investigate the distinct roles of ERK1 and ERK2 isoforms in TNBC progression.
- To test the hypothesis that ERK2, not ERK1, drives the cancer stem cell (CSC) phenotype and metastasis in TNBC.
Main Methods:
- Generated stable knockdown clones of ERK1 and ERK2 in TNBC cell lines (SUM149, BT549) using shRNA lentiviral vectors.
- Assessed self-renewal capacity via anchorage-independent and mammosphere formation assays.
- Evaluated migration, invasion, and in vivo metastatic potential using tail vein injection in SCID-beige mice.
- Analyzed gene expression changes using the Affymetrix HGU133plus2 microarray platform.
Main Results:
- ERK2 knockdown significantly inhibited colony and mammosphere formation, indicating reduced self-renewal.
- ERK2 knockdown correlated with reduced cell migration and invasion.
- Mice injected with ERK2-knockdown cells showed significantly lower lung metastatic burden compared to controls or ERK1-knockdown cells.
- Gene expression analysis revealed ERK2 knockdown predominantly altered regulation of CSCs and metastasis.
Conclusions:
- ERK2, but not ERK1, plays a critical role in promoting the cancer stem cell phenotype in TNBC.
- ERK2 significantly contributes to the metastatic potential of TNBC.
- Targeting ERK2 may represent a novel therapeutic strategy for managing TNBC metastasis and recurrence.
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