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Updated: Aug 15, 2026

Ex vivo Live Imaging of Lung Metastasis and Their Microenvironment
Published on: February 3, 2016
Orthotopic transplant mouse models with green fluorescent protein-expressing cancer cells to visualize metastasis and
1AntiCancer, Inc., San Diego, CA, USA. all@anticancer.com
Abstract:
There have been major efforts in metastasis research in recent years, especially on the role of angiogenesis in the metastatic process. Much of the information in this area has been obtained from model systems that are not representative of clinical cancer. The technique of surgical orthotopic implantation (SOI) has allowed the development of clinically relevant metastatic models of human cancer in immunodeficient rodents such as the nude and SCID mouse. In order to allow direct visualization of the metastatic process, we took advantage of the green fluorescent protein (GFP) of the jellyfish, Aequorea victoria. A series of cancer cell lines have been stably transfected with vectors containing humanized GFP cDNA. To utilize GFP expression for metastasis studies, fragments of subcutaneously growing tumor, which were comprised of GFP-expressing cells, were implanted by SOI in nude mice. Subsequent metastases were visualized in systemic organs by GFP fluorescence in the lung, liver, bones, brain and other organs down to the single-cell level. With this fluorescent tool, we detected and visualized for the first time tumor cells at the microscopic level in fresh viable tissue in their normal host organs even in the live animal. Angiogenesis is readily visualized in the transplanted GFP-expressing tumors in real time in situ in the live animal using simple laparotomy and fluorescent techniques. The results with the GFP-transfected tumor cells, combined with the use of SOI, demonstrate a fundamental advance to visualize and study cancer metastasis and the role of angiogenesis and other factors in the metastatic process.
Insights
Researchers developed a novel method using green fluorescent protein (GFP) and surgical orthotopic implantation (SOI) to visualize cancer metastasis and angiogenesis in real-time within live animal models, advancing metastasis research.
Area of Science:
- Oncology
- Molecular Biology
- Biotechnology
Background:
- Metastasis research has focused on angiogenesis, but many models lack clinical relevance.
- Existing models often fail to accurately represent human cancer progression.
- Need for advanced techniques to visualize metastasis in clinically relevant settings.
Purpose of the Study:
- To develop a clinically relevant model for studying cancer metastasis and angiogenesis.
- To visualize the metastatic process and tumor cell dissemination in real-time.
- To utilize green fluorescent protein (GFP) for enhanced detection of tumor cells.
Main Methods:
- Surgical orthotopic implantation (SOI) of human cancer cells into immunodeficient rodents (nude mice).
- Stable transfection of cancer cell lines with humanized green fluorescent protein (GFP) cDNA.
- Visualization of GFP-expressing tumor cells and angiogenesis in systemic organs using fluorescence.
Main Results:
- Successful visualization of micrometastatic tumor cells in various organs (lung, liver, bone, brain) down to the single-cell level.
- Real-time, in situ visualization of angiogenesis within GFP-expressing tumors in live animals.
- Demonstrated the ability to detect tumor cells in fresh, viable tissue within their host organs.
Conclusions:
- The combination of GFP transfection and SOI provides a powerful tool for studying cancer metastasis.
- This technique allows for fundamental advances in visualizing metastasis and the role of angiogenesis.
- Offers a new platform for preclinical research on cancer progression and therapeutic interventions.

