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Updated: Jun 4, 2026

An Orthotopic Murine Model of Human Prostate Cancer Metastasis
Published on: September 18, 2013
MKK4 suppresses metastatic colonization by multiple highly metastatic prostate cancer cell lines through a transient
Russell Z Szmulewitz1, Robert Clark, Tamara Lotan
1Department of Medicine, Section of Hematology/Oncology, The University of Chicago, Chicago, IL 60637, USA.
Abstract:
Metastatic dissemination in prostate cancer is often early, but not all cancer cells form clinical metastases. Map kinase kinase 4 (MKK4) suppresses metastasis in a preclinical prostate cancer model. We hypothesize that MKK4 will specifically inhibit metastatic colonization through impaired proliferation. Three highly metastatic rat prostate cancer cell lines (AT6.1, Mat-Lu and AT3.1) were employed. Stably over-expressing HA-MKK4 or vector control lines were injected into immunocompromised mice. These experiments validated that HA-MKK4 specifically affects metastatic colonization and increases survival. Median survival (days) with HA-MKK4 vs. vector was 42 vs. 28 (p < 0.0001) for AT6.1, 25 vs. 19 (p < 0.0001) for Mat-Lu and 27 vs. 20 (p < 0.0001) for AT3.1. HA-MKK4 suppresses colonization within 14 days post dissemination, after which exponential proliferation resumes. Although overt metastases retain HA-MKK4, it is inactive within these lesions. Nonetheless, metastasis-derived cell lines were shown to retain functional HA-MKK4 and like their parental HA-MKK4 line are suppressed for experimental metastasis formation in vivo. Disseminated AT6.1-HA-MKK4 cells were analyzed and were found to have an alteration in cell cycle. Specifically, there was an accumulation of cells in G1-phase (p = 0.024) and decrease in S-phase (p = 0.037) compared with vector. In multiple prostate cancer lines, HA-MKK4 suppresses an early step in metastatic colonization. These data support a model in which MKK4 activation at the metastatic site causes a cell-cycle arrest, which is eventually overcome despite presence of functional HA-MKK4. Further studies will specifically interrogate the regulation of MKK4 activation within the metastatic microenvironment and the down-stream molecular events critical for metastasis suppression.
Insights
Map kinase kinase 4 (MKK4) suppresses prostate cancer metastasis by impairing cancer cell proliferation and colonization. MKK4 induces cell cycle arrest, significantly increasing survival in preclinical models.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Metastasis Research
Background:
- Prostate cancer often exhibits early metastatic dissemination, yet not all disseminated cells form clinical metastases.
- Map kinase kinase 4 (MKK4) has been identified as a potential suppressor of metastasis in preclinical prostate cancer models.
Purpose of the Study:
- To investigate the hypothesis that MKK4 specifically inhibits metastatic colonization by impairing cancer cell proliferation.
- To validate the role of MKK4 in suppressing metastasis and improving survival in vivo.
Main Methods:
- Utilized three highly metastatic rat prostate cancer cell lines (AT6.1, Mat-Lu, AT3.1).
- Created stably over-expressing HA-MKK4 or vector control cell lines.
- Injected these cell lines into immunocompromised mice to assess metastatic colonization and survival.
Main Results:
- HA-MKK4 overexpression significantly increased median survival across all tested cell lines (e.g., AT6.1: 42 vs. 28 days, p < 0.0001).
- HA-MKK4 suppressed metastatic colonization within 14 days post-dissemination, inducing G1-phase cell cycle arrest and decreasing S-phase.
- Despite functional HA-MKK4 in overt metastases, its suppressive activity was overcome over time, though metastasis-derived cells retained MKK4's suppressive potential in vivo.
Conclusions:
- HA-MKK4 suppresses an early step in prostate cancer metastatic colonization by inducing cell-cycle arrest.
- The metastatic microenvironment may eventually overcome MKK4-mediated cell-cycle arrest, despite the continued presence of functional MKK4.
- Further research is warranted to elucidate MKK4 regulation within the metastatic microenvironment and its downstream effectors.
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