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Updated: Aug 22, 2026

Radionuclide-fluorescence Reporter Gene Imaging to Track Tumor Progression in Rodent Tumor Models
Published on: March 13, 2018
Oncolytic vaccinia virus expressing the human somatostatin receptor SSTR2: molecular imaging after systemic delivery
J Andrea McCart1, Navneet Mehta, Deborah Scollard
1Division of Experimental Therapeutics, Toronto General Research Institute, Toronto, ON, Canada. amccart@uhnres.utoronto.ca
Abstract:
Oncolytic vaccinia viruses (VV) have demonstrated tumor specificity, high levels of transgene expression, and anti-tumor effects. The ability to visualize vector biodistribution noninvasively will be necessary as gene therapy vectors come to clinical trials, and the creation of a VV that can both treat tumors and permit noninvasive imaging after systemic delivery is therefore an exciting concept. To facilitate imaging, a VV expressing the human somatostatin receptor type 2 (SSTR2) was created. Cells infected with the SSTR2-expressing VV or controls were incubated with the somatostatin analog 111In-pentetreotide with or without an excess of nonradiolabeled pentetreotide. The SSTR2-infected cells bound 111In-pentetreotide sixfold more efficiently than control virus-infected cells and this binding was specifically blocked by nonradiolabeled pentetreotide. Nude mice bearing subcutaneous murine colon CA xenografts were injected intraperitoneally with the SSTR2-expressing VV or control VV. After 6 days, mice were injected with 111In-pentetreotide and imaged. Mice were sacrificed and organs collected and counted in a gamma counter. The uptake of radioactivity in tumors and normal tissues (percentage injected dose per gram) and tumor-to-normal tissue ratios were determined. Tumors infected with the SSTR2-expressing VV accumulated significantly higher concentrations of radioactivity compared to tumors in animals receiving the control virus. SSTR2-infected tumors were visible on imaging 6 days after VV injection and could be visualized for up to 3 weeks post-viral injection using repeat injections of 111In-pentetreotide. This reporter gene imaging strategy could be a very effective method to visualize vector distribution, expression, and persistence over time and enhances the potential of VV as a novel anti-cancer therapeutic.
Insights
Researchers engineered an oncolytic vaccinia virus (VV) to express somatostatin receptor type 2 (SSTR2) for noninvasive tumor imaging. This SSTR2-VV enables visualization of vector biodistribution and anti-cancer therapy in preclinical models.
Area of Science:
- Oncolytic virotherapy
- Molecular imaging
- Gene therapy
Background:
- Oncolytic vaccinia viruses (VV) show promise for cancer treatment due to tumor specificity and transgene expression.
- Noninvasive imaging of vector biodistribution is crucial for clinical gene therapy trials.
- Developing a single VV for both therapy and imaging is a significant goal.
Purpose of the Study:
- To create a vaccinia virus (VV) capable of both treating tumors and allowing noninvasive imaging of its biodistribution.
- To evaluate the utility of a VV engineered to express the human somatostatin receptor type 2 (SSTR2) as a reporter gene for imaging.
Main Methods:
- A VV expressing SSTR2 was constructed.
- In vitro, SSTR2-VV infected cells showed enhanced binding of 111In-pentetreotide compared to control cells.
- In vivo, nude mice with colon CA xenografts received SSTR2-VV or control VV, followed by 111In-pentetreotide imaging and biodistribution analysis.
Main Results:
- SSTR2-VV infected cells demonstrated a sixfold increase in 111In-pentetreotide binding, specifically blocked by non-radiolabeled pentetreotide.
- Tumors in mice treated with SSTR2-VV accumulated significantly higher radioactivity concentrations than control tumors.
- SSTR2-VV infected tumors were visible via imaging from 6 days up to 3 weeks post-injection.
Conclusions:
- The SSTR2-VV reporter gene imaging strategy effectively visualizes vector distribution, expression, and persistence.
- This approach enhances the potential of VV as a novel anti-cancer therapeutic agent.
- Noninvasive imaging of oncolytic virus delivery and activity is feasible and valuable for therapeutic development.
