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Updated: May 8, 2026

An Orthotopic Murine Model of Human Prostate Cancer Metastasis
Published on: September 18, 2013
Perturbation of NK cell peripheral homeostasis accelerates prostate carcinoma metastasis
Abstract:
The activating receptor NK cell group 2 member D (NKG2D) mediates antitumor immunity in experimental animal models. However, whether NKG2D ligands contribute to tumor suppression or progression clinically remains controversial. Here, we have described 2 novel lines of "humanized" bi-transgenic (bi-Tg) mice in which native human NKG2D ligand MHC class I polypeptide-related sequence B (MICB) or the engineered membrane-restricted MICB (MICB.A2) was expressed in the prostate of the transgenic adenocarcinoma of the mouse prostate (TRAMP) model of spontaneous carcinogenesis. Bi-Tg TRAMP/MICB mice exhibited a markedly increased incidence of progressed carcinomas and metastasis, whereas TRAMP/MICB.A2 mice enjoyed long-term tumor-free survival conferred by sustained NKG2D-mediated antitumor immunity. Mechanistically, we found that cancer progression in TRAMP/MICB mice was associated with loss of the peripheral NK cell pool owing to high serum levels of tumor-derived soluble MICB (sMICB). Prostate cancer patients also displayed reduction of peripheral NK cells and high sMIC levels. Our study has not only provided direct evidence in "humanized" mouse models that soluble and membrane-restricted NKG2D ligands pose opposite impacts on cancer progression, but also uncovered a mechanism of sMIC-induced impairment of NK cell antitumor immunity. Our findings suggest that the impact of soluble NKG2D ligands should be considered in NK cell-based cancer immunotherapy and that our unique mouse models should be valuable for therapy optimization.
Insights
Soluble NKG2D ligands (MICB) promote prostate cancer progression by depleting NK cells, while membrane-bound MICB enhances antitumor immunity. These findings impact NK cell cancer immunotherapy strategies.
Area of Science:
- Immunology
- Oncology
- Genetics
Background:
- The role of NKG2D ligands in clinical cancer progression is debated.
- NKG2D receptor-mediated immunity is crucial for antitumor responses.
Purpose of the Study:
- To investigate the distinct roles of soluble (MICB) and membrane-bound (MICB.A2) NKG2D ligands in prostate cancer.
- To elucidate the mechanisms underlying NKG2D ligand effects on NK cell immunity and cancer progression.
Main Methods:
- Generation of "humanized" bi-transgenic (bi-Tg) TRAMP mice expressing human MICB or MICB.A2 in the prostate.
- Analysis of tumor incidence, metastasis, NK cell populations, and serum soluble MICB (sMICB) levels.
- Comparison of findings with prostate cancer patient data.
Main Results:
- TRAMP/MICB mice showed increased carcinoma progression and metastasis.
- TRAMP/MICB.A2 mice exhibited long-term tumor-free survival due to NKG2D-mediated immunity.
- Cancer progression in TRAMP/MICB mice correlated with reduced peripheral NK cells and high sMICB levels.
- Prostate cancer patients displayed similar patterns of reduced NK cells and elevated sMICB.
Conclusions:
- Soluble and membrane-restricted NKG2D ligands have opposing effects on cancer progression.
- Soluble MICB impairs NK cell antitumor immunity by reducing peripheral NK cell numbers.
- Novel bi-Tg mouse models offer valuable tools for optimizing NK cell-based cancer immunotherapy.
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