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Updated: May 21, 2026

Models of Bone Metastasis
Published on: September 4, 2012
A novel animal model for bone metastasis in human lung cancer
Mi Li1, Mingliang Zhou, Meng Gong
1Laboratory of Endocrinology and Metabolism, West China Hospital, Sichuan University, Chengdu, Sichuan 610041, P.R. China.
Abstract:
Metastases account for 90% of lung cancer mortalities, frequently target the skeleton and lead to rapid deterioration in quality of life. The molecular mechanism underlying bone metastases is largely unknown. Development of xenograft mouse models, such as the severe combined immunodeficient (SCID) CB-17 mouse and the non-obese diabetic (NOD)/SCID mouse, both of which lack functional B- and T-cells and are able to host allogeneic or xenogeneic tumor cells, has made great contributions in this area. However, residual natural killer (NK) cells in these models are able to significantly modify local tumor growth and metastasis. Treatment with anti-murine IL-2 receptor β chain Ab (TM-β1) antibody can abrogate NK cell activity in vivo; however, the antibody treatment may result in unexpected effects and the stability is hard to control. To overcome these shortcomings, we evaluated xenografts in NOD-scid IL2Rγ(null) immunodeficient mice that lacked mature T cells, B cells and functional NK cells. We compared the target tissue distribution of the human small cell lung cancer cell lines SBC-5 and SBC-3. Gross necropsy and whole skeletal X-ray film examination of the host mice were conducted 30 days post-tail vein injection. The SBC-5 cells colonized bone and formed lytic lesions. The cells also colonized liver, spleen and, less frequently, the pancreas, ovary and kidney. The SBC-3 cell xenografts formed easily visible tumor foci in the liver, pancreas, ovary/uterus and kidney, but not bone metastases. Our results showed that SBC-5 cells in NOD-scid IL2Rγ(null) immunodeficient mice provide a suitable xenograft model system for bone metastasis of human lung cancer. This novel animal model may therefore be used to study the molecular pathway of bone metastases and to evaluate targets for effective therapies.
Insights
A new mouse model using NOD-scid IL2Rγ(null) immunodeficient mice effectively models human lung cancer bone metastasis. This model aids in studying metastasis mechanisms and evaluating new therapies for lung cancer patients.
Area of Science:
- Oncology
- Immunology
- Preclinical Research
Background:
- Lung cancer bone metastases cause significant mortality and morbidity.
- Existing immunodeficient mouse models have limitations due to residual natural killer (NK) cell activity.
- There is a need for improved models to study lung cancer bone metastasis.
Purpose of the Study:
- To evaluate the utility of NOD-scid IL2Rγ(null) immunodeficient mice for modeling human lung cancer bone metastasis.
- To compare the metastatic potential of human small cell lung cancer cell lines (SBC-5 and SBC-3) in this model.
- To establish a reliable xenograft model for investigating bone metastasis pathways and therapeutic targets.
Main Methods:
- Xenotransplantation of human small cell lung cancer cell lines (SBC-5 and SBC-3) into NOD-scid IL2Rγ(null) immunodeficient mice.
- Assessment of tumor colonization and metastasis via gross necropsy and whole skeletal X-ray examination 30 days post-injection.
- Comparison of metastatic patterns between SBC-5 and SBC-3 cell lines in the target organs, particularly bone.
Main Results:
- SBC-5 cells successfully colonized bone, forming lytic lesions, and also metastasized to the liver, spleen, pancreas, ovary, and kidney.
- SBC-3 cells formed tumor foci in the liver, pancreas, ovary/uterus, and kidney, but did not metastasize to bone.
- NOD-scid IL2Rγ(null) mice lacking T cells, B cells, and functional NK cells proved suitable for modeling bone metastasis.
Conclusions:
- The NOD-scid IL2Rγ(null) immunodeficient mouse model is effective for studying human lung cancer bone metastasis.
- SBC-5 cell line in this model provides a valuable tool for investigating the molecular mechanisms of bone metastasis.
- This novel model system holds promise for evaluating potential therapeutic targets for lung cancer bone metastases.

