Myxoma virus therapy for human embryonal rhabdomyosarcoma in a nude mouse model
Veronica G Kinn1, Valerie A Hilgenberg1, Amy L MacNeill1
1Department of Microbiology, Immunology and Pathology, College of Veterinary Medicine and Biomedical Sciences, Colorado State University, Fort Collins, CO, USA.
Abstract:
Rhabdomyosarcoma (RMS) is a devastating tumor of young people that is difficult to cure. To determine if oncolytic virus therapy can improve outcomes in individuals with RMS, myxoma virus expressing a red fluorescent protein (MYXV-red) was evaluated for antitumoral effects using a murine model of RMS. Fluorescent protein was expressed in four RMS cell lines inoculated with MYXV-red, indicating that these cells were semipermissive to MYXV infection. MYXV-red replication and cytopathic effects were further evaluated using human embryonal RMS (CCL-136) cells. Logarithmic growth of MYXV-red and significant cell death were observed 72 hours after inoculation with MYXV. The oncolytic effects of MYXV-red were then studied in nude mice that were injected subcutaneously with CCL-136 cells to establish RMS xenografts. Once tumors measured 5 mm in diameter, mice were treated with multiple intratumoral injections of MXYV-red or saline. The average final tumor volume and rate of tumor growth were significantly decreased, and median survival time was significantly increased in MYXV-red-treated mice (P-values =0.0416, 0.0037, and 0.0004, respectively). Histologic sections of MYXV-red-treated tumors showed increased inflammation compared to saline-treated tumors (P-value =0.0002). In conclusion, MXYV-red treatment of RMS tumors was successful in individual mice as it resulted in decreased tumor burden in eight of eleven mice with nearly complete tumor remission in five of eleven mice. These data hold promise that MYXV-red treatment may be beneficial for people suffering from RMS. To our knowledge, this is the first report of successful treatment of RMS tumors using an oncolytic poxvirus.
Insights
Myxoma virus therapy shows promise for treating rhabdomyosarcoma (RMS), a challenging childhood cancer. This oncolytic virus significantly reduced tumor growth and increased survival in a mouse model, offering hope for new RMS treatments.
Area of Science:
- Oncology
- Virology
- Cancer Therapy
Background:
- Rhabdomyosarcoma (RMS) is a prevalent and aggressive soft-tissue sarcoma in children, often resistant to conventional therapies.
- Developing novel therapeutic strategies for RMS is crucial due to its poor prognosis.
Purpose of the Study:
- To investigate the efficacy of myxoma virus expressing a red fluorescent protein (MYXV-red) as an oncolytic virus therapy for rhabdomyosarcoma.
- To evaluate the antitumoral effects of MYXV-red in both in vitro RMS cell lines and an in vivo murine model.
Main Methods:
- MYXV-red was used to infect four RMS cell lines and human embryonal RMS (CCL-136) cells to assess viral replication and cytopathic effects.
- RMS xenografts were established in nude mice by subcutaneous injection of CCL-136 cells.
- Mice with established tumors received intratumoral injections of MYXV-red or saline, and tumor growth, survival, and tumor histology were analyzed.
Main Results:
- MYXV-red demonstrated semipermissive infection in RMS cell lines, with logarithmic replication and significant cell death observed in CCL-136 cells within 72 hours.
- Intratumoral MYXV-red treatment significantly reduced average final tumor volume and tumor growth rate in mice.
- MYXV-red-treated mice exhibited significantly increased median survival time and increased intratumoral inflammation compared to controls.
Conclusions:
- MYXV-red exhibits significant oncolytic activity against rhabdomyosarcoma in a preclinical mouse model.
- The treatment led to decreased tumor burden and notable tumor remission in a majority of treated mice.
- These findings suggest that MYXV-red is a promising oncolytic poxvirus for the potential treatment of human rhabdomyosarcoma.
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