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Updated: May 2, 2026

Paramyxoviruses for Tumor-targeted Immunomodulation: Design and Evaluation Ex Vivo
Published on: January 7, 2019
Attenuated and protease-profile modified sendai virus vectors as a new tool for virotherapy of solid tumors
Martina Zimmermann1, Sorin Armeanu-Ebinger2, Sascha Bossow3
1Department of Internal Medicine I, Medical University Hospital, Tübingen, Germany.
Abstract:
Multiple types of oncolytic viruses are currently under investigation in clinical trials. To optimize therapeutic outcomes it is believed that the plethora of different tumor types will require a diversity of different virus types. Sendai virus (SeV), a murine parainfluenza virus, displays a broad host range, enters cells within minutes and already has been applied safely as a gene transfer vector in gene therapy patients. However, SeV spreading naturally is abrogated in human cells due to a lack of virus activating proteases. To enable oncolytic applications of SeV we here engineered a set of novel recombinant vectors by a two-step approach: (i) introduction of an ubiquitously recognized cleavage-motive into SeV fusion protein now enabling continuous spreading in human tissues, and (ii) profound attenuation of these rSeV by the knockout of viral immune modulating accessory proteins. When employing human hepatoma cell lines, newly generated SeV variants now reached high titers and induced a profound tumor cell lysis. In contrast, virus release from untransformed human fibroblasts or primary human hepatocytes was found to be reduced by about three log steps in a time course experiment which enables the cumulation of kinetic differences of the distinct phases of viral replication such as primary target cell infection, target cell replication, and progeny virus particle release. In a hepatoma xenograft animal model we found a tumor-specific spreading of our novel recombinant SeV vectors without evidence of biodistribution into non-malignant tissues. In conclusion, we successfully developed novel tumor-selective oncolytic rSeV vectors, constituting a new tool for virotherapy of solid tumors being ready for further preclinical and clinical development to address distinct tumor types.
Insights
Researchers engineered novel Sendai virus (SeV) vectors for oncolytic virotherapy. These recombinant SeV (rSeV) show tumor-specific spreading and lysis in preclinical models, offering a new tool for solid tumor treatment.
Area of Science:
- Virology
- Oncology
- Gene Therapy
Background:
- Oncolytic virotherapy utilizes viruses to selectively destroy cancer cells.
- Sendai virus (SeV) is a murine parainfluenza virus with a broad host range and safe gene transfer history.
- Natural SeV spread is limited in human cells due to protease dependency.
Purpose of the Study:
- To engineer recombinant SeV (rSeV) vectors for enhanced oncolytic efficacy in human tumors.
- To enable continuous SeV spreading in human tissues for therapeutic applications.
- To attenuate rSeV for improved safety and tumor selectivity.
Main Methods:
- Engineered SeV fusion protein with a cleavage motif for human cell entry and spread.
- Generated attenuated rSeV by knocking out viral immune-modulating accessory proteins.
- Evaluated rSeV in human hepatoma cell lines, primary human hepatocytes, and a hepatoma xenograft model.
Main Results:
- Novel SeV variants achieved high titers and induced significant tumor cell lysis in vitro.
- Reduced virus release from non-malignant human cells demonstrated selectivity.
- rSeV exhibited tumor-specific spreading in vivo without off-target biodistribution.
Conclusions:
- Successfully developed novel tumor-selective oncolytic rSeV vectors.
- These rSeV represent a promising new tool for virotherapy of solid tumors.
- The engineered vectors are poised for further preclinical and clinical development.
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