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Novel Near-Infrared Fluorescence-Guided Surgery With Vesicular Stomatitis Virus for Complete Surgical Resection of
Tomohiko Sakuda1, Tadahiko Kubo1, Muhammad Phetrus Johan1,2
1Department of Orthopaedic Surgery, Graduate School of Biomedical and Health Sciences, Hiroshima University, 1-2-3 Kasumi, Minami-ku, Hiroshima, 734-8551, Japan.
Abstract:
Attempts have been made to visualize tumor cells intraoperatively with fluorescence guidance. However, the clear demarcation and complete tumor resection have always been a challenging task. To address this, we have developed a novel fluorescence bioimaging system with vesicular stomatitis virus (VSV) incorporating Katushka, near-infrared fluorescent protein. VSV is tumor-specific owing to the deficiency of antiviral interferon signaling pathways in tumor cells. We aimed to evaluate the tumor specificity of the recombinant VSV-Katushka (rVSV-K) in osteosarcoma cells and to assess the feasibility of complete tumor resection by the rVSV-K fluorescence guidance. In in vitro experiments, mouse and human osteosarcoma cell lines and normal human mesenchymal stem cells were infected with rVSV-K and observed by fluorescence microscopy. Near-infrared fluorescence was observed only in osteosarcoma cells, even at a low-concentration of virus infections. In in vivo experiments, mouse osteosarcoma (LM8) cells were transplanted subcutaneously into the back of immune-competent mice to produce an osteosarcoma, which was then injected with rVSV-K. The areas emitting fluorescence were resected using a bioimaging system. The distance between the surgical and tumor margins of the fluorescence-guided resection with rVSV-K group was significantly larger than that of the non-guided resection groups. The local recurrence rate was significantly lower in the fluorescence-guided resection with rVSV-K group than in the non-guided resection groups. The distant metastasis rate and average survival rate were not significantly different between all groups. These results suggest that the rVSV-K is specific to osteosarcoma cells and enables complete tumor resection of osteosarcomas in mice. © 2019 Orthopaedic Research Society. Published by Wiley Periodicals, Inc. J Orthop Res.
Insights
This study introduces a novel fluorescence bioimaging system using recombinant vesicular stomatitis virus (rVSV-K) for enhanced osteosarcoma detection and resection. Fluorescence guidance with rVSV-K significantly improved tumor margin visualization and reduced local recurrence in mice.
Area of Science:
- Oncology
- Biotechnology
- Medical Imaging
Background:
- Intraoperative visualization of tumor cells using fluorescence guidance remains challenging for complete tumor resection.
- Developing novel imaging systems is crucial for improving surgical outcomes in oncology.
Purpose of the Study:
- To evaluate the tumor specificity of a novel recombinant vesicular stomatitis virus (rVSV-K) incorporating Katushka, a near-infrared fluorescent protein.
- To assess the feasibility of rVSV-K fluorescence guidance for complete osteosarcoma resection.
Main Methods:
- In vitro infection of osteosarcoma and mesenchymal stem cells with rVSV-K, followed by fluorescence microscopy.
- In vivo implantation of osteosarcoma cells in mice, injection with rVSV-K, and fluorescence-guided resection.
- Comparison of surgical margin distance and recurrence rates between guided and non-guided resection groups.
Main Results:
- rVSV-K demonstrated specificity for osteosarcoma cells, exhibiting near-infrared fluorescence in vitro.
- Fluorescence-guided resection with rVSV-K resulted in significantly larger surgical margins compared to non-guided groups.
- Local recurrence rates were significantly lower in the rVSV-K fluorescence-guided resection group.
Conclusions:
- Recombinant VSV-Katushka (rVSV-K) is specific to osteosarcoma cells.
- rVSV-K fluorescence guidance facilitates complete tumor resection, reducing local recurrence in osteosarcoma models.
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