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Updated: Jun 6, 2025

Paramyxoviruses for Tumor-targeted Immunomodulation: Design and Evaluation Ex Vivo
Published on: January 7, 2019
Effects of virus-induced immunogenic cues on oncolytic virotherapy
Darshak K Bhatt1, Thijs Janzen2, Toos Daemen1
1Department of Medical Microbiology and Infection Prevention, University Medical Center Groningen, University of Groningen, Groningen, The Netherlands.
Abstract:
Oncolytic virotherapy is a promising form of cancer treatment that uses viruses to infect and kill cancer cells. In addition to their direct effects on cancer cells, the viruses stimulate various immune responses partly directed against the tumour. Efforts are made to genetically engineer oncolytic viruses to enhance their immunogenic potential. However, the interplay between tumour growth, viral infection, and immune responses is complex and not fully understood, leading to variable and sometimes counterintuitive therapeutic outcomes. Here, we employ a spatio-temporal model to shed more light on this interplay. We investigate systematically how the properties of virus-induced immunogenic signals (their half-life, rate of spread, and potential to promote T-cell-mediated cytotoxicity) affect the therapeutic outcome. Our simulations reveal that strong immunogenic signals, combined with faster diffusion rates, improve the spread of immune activation, leading to better tumour eradication. However, replicate simulations suggest that the outcome of virotherapy is more stochastic than generally appreciated. Our model shows that virus-induced immune responses can interfere with virotherapy, by targeting virus-infected cancer cells and/or by impeding viral spread. In the presence of immune responses, the mode of virus introduction is important, with systemic viral delivery throughout the tumour yielding the most favourable outcomes. The timing of virus introduction also plays a critical role; depending on the efficacy of the immune response, a later start of virotherapy can be advantageous. Overall, our results emphasise that the rational design of oncolytic viruses requires optimising virus-induced immunogenic signals and strategies that balance viral spread with immune activity for improved therapeutic success.
Insights
Oncolytic virotherapy uses viruses to fight cancer by directly killing tumor cells and stimulating immune responses. Optimizing virus-induced immune signals and balancing viral spread with immune activity are key for successful cancer treatment.
Area of Science:
- Oncology
- Immunology
- Computational Biology
Background:
- Oncolytic virotherapy leverages viruses to selectively infect and destroy cancer cells.
- Engineered oncolytic viruses aim to enhance anti-tumor immune responses.
- The complex interplay between tumor growth, viral infection, and immunity complicates therapeutic outcomes.
Purpose of the Study:
- To investigate the impact of virus-induced immunogenic signals on oncolytic virotherapy outcomes.
- To model the spatio-temporal dynamics of tumor-virus-immune interactions.
- To identify optimal strategies for enhancing oncolytic virotherapy efficacy.
Main Methods:
- Development of a spatio-temporal mathematical model.
- Systematic simulation of varying immunogenic signal properties (half-life, spread rate, cytotoxicity).
- Analysis of viral spread, immune activation, and tumor eradication dynamics.
Main Results:
- Stronger and faster-spreading immunogenic signals improve tumor eradication.
- Oncolytic virotherapy outcomes are more stochastic than anticipated.
- Immune responses can hinder virotherapy by targeting infected cells or impeding viral spread.
- Systemic viral delivery and optimized timing of introduction are crucial when immune responses are present.
Conclusions:
- Rational design of oncolytic viruses requires optimizing immunogenic signals.
- Balancing viral spread and immune activity is essential for therapeutic success.
- Understanding the complex tumor-virus-immune dynamics is critical for advancing oncolytic virotherapy.
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