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Handling of the Cotton Rat in Studies for the Pre-clinical Evaluation of Oncolytic Viruses
Published on: November 24, 2014
Potent systemic antitumor activity from an oncolytic herpes simplex virus of syncytial phenotype
1Center for Cell and Gene Therapy, Baylor College of Medicine, One Baylor Plaza, Houston, TX 77030, USA.
Abstract:
Conditionally replicating (oncolytic) viruses, which selectively replicate in tumor cells but not in normal cells, show great promise as antitumor agents for cancer therapy. The principal antitumor activity of these viruses derives from their replication within tumor cells, which results in cell destruction and the production of progeny virions that can spread to adjacent tumor cells. However, one potential limitation of this approach is that viral gene deletions conferring tumor selectivity also result frequently in reduced potency of the virus in tumors. Therefore, strategies designed to enhance the potency of current oncolytic viruses will likely increase their chance of clinical success. Here we report the construction of an oncolytic herpes simplex virus (HSV) of which the infection also causes strong cell membrane fusion (syncytial formation). In vitro characterization on a variety of human tumor cells of different tissue origins showed that the plaques from this virus (Fu-10) are phenotypically unique and are significantly larger than those from the parental G207 virus, a well-characterized oncolytic HSV lacking fusogenic function. Furthermore, the syncytial formation caused by this virus depended on HSV replication, indicating that cell membrane fusion will only occur in dividing cells (such as tumor cells) where the virus can undergo a full infection cycle but not in normal cells where the viral replication is restricted. Systemic administration of Fu-10 into mice with established lung metastatic breast cancer resulted in a dramatic therapeutic effect. These studies demonstrate that incorporation of fusogenic function into an oncolytic virus can significantly increase the potency of viral oncolysis; this may lead to an enhanced clinical performance, especially in late-stage cancer patients.
Insights
Engineered oncolytic herpes simplex virus (HSV) with cell fusion capability shows enhanced tumor cell destruction. This novel virus, Fu-10, demonstrates significant therapeutic effects against metastatic breast cancer in mice.
Area of Science:
- Virology
- Oncology
- Biotechnology
Background:
- Oncolytic viruses selectively replicate in tumor cells, offering a promising cancer therapy approach.
- Tumor selectivity achieved through gene deletion can reduce oncolytic virus potency.
- Enhancing oncolytic virus potency is crucial for clinical success.
Purpose of the Study:
- To construct and characterize a novel oncolytic herpes simplex virus (HSV) with enhanced fusogenic properties.
- To evaluate the potency and tumor selectivity of the engineered virus (Fu-10) compared to a non-fusogenic parental virus (G207).
- To assess the therapeutic efficacy of Fu-10 in a preclinical cancer model.
Main Methods:
- Construction of a fusogenic oncolytic herpes simplex virus (HSV) designated Fu-10.
- In vitro characterization of Fu-10 plaque formation and syncytial formation on human tumor cells.
- Assessment of syncytial formation dependency on viral replication.
- In vivo evaluation of Fu-10 therapeutic efficacy in a mouse model of metastatic breast cancer.
Main Results:
- The engineered Fu-10 virus exhibited significantly larger plaques and pronounced syncytial formation compared to the parental G207 virus.
- Syncytial formation was dependent on HSV replication, ensuring tumor cell-specific activity.
- Systemic administration of Fu-10 demonstrated a dramatic therapeutic effect in mice with lung metastatic breast cancer.
Conclusions:
- Incorporating fusogenic function into oncolytic viruses can significantly enhance their oncolytic potency.
- The developed fusogenic oncolytic HSV (Fu-10) shows potential for improved clinical performance, particularly in advanced-stage cancers.
- This strategy offers a promising avenue for developing more effective oncolytic virotherapies.
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