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Updated: Dec 15, 2025

Paramyxoviruses for Tumor-targeted Immunomodulation: Design and Evaluation Ex Vivo
Published on: January 7, 2019
Mechanisms of measles virus oncolytic immunotherapy
Gemma Pidelaserra-Martí1, Christine E Engeland2
1Research Group Mechanisms of Oncolytic Immunotherapy, Clinical Cooperation Unit Virotherapy, German Cancer Research Center (DKFZ) and National Center for Tumor Diseases (NCT), Heidelberg, Germany; Faculty of Biosciences, Heidelberg University and Helmholtz International Graduate School for Cancer Research, DKFZ, Heidelberg, Germany.
Abstract:
The study of measles virus (MeV) as a cancer immunotherapeutic was prompted by clinical observations of leukemia and lymphoma regressions in patients following measles virus infection in the 1970s and 1980s. Since then, numerous preclinical studies have confirmed the oncolytic activity of MeV vaccine strains as well as their potential to promote long-lasting tumor-specific immune responses. Early clinical data indicate that some of these effects may translate to the treatment of cancer patients. In this review, we provide a structured summary of current evidence for the anti-tumor immune activity of oncolytic MeV. We start with an overview of MeV oncolysis and MeV-induced immunogenic cell death. Next, we relate findings on MeV-mediated activation of antigen-presenting cells, T cell priming and effector mechanisms to the cancer immunity cycle. We discuss additional factors in the tumor microenvironment which are modulated by MeV treatment as well as the role of anti-viral immunity. Based on these findings, we highlight avenues for rational enhancement of oncolytic MeV immunotherapy by vector engineering. We further point to advantages and drawbacks of experimental models and propose areas warranting promising research. Lastly, we review the available immunomonitoring data from several Phase I clinical trials. While this review presents data for MeV, the concepts and principles introduced herein apply to other oncolytic viruses, providing a framework to assess novel cancer immunotherapies.
Insights
Measles virus (MeV) shows promise as an oncolytic immunotherapy, demonstrating anti-tumor activity and stimulating immune responses. Further research and vector engineering could enhance its effectiveness in cancer treatment.
Area of Science:
- Oncology
- Virology
- Immunotherapy
Background:
- Historical observations noted cancer regressions after measles virus infection.
- Preclinical studies confirm measles virus (MeV) vaccine strains possess oncolytic activity.
- MeV can potentially induce long-lasting, tumor-specific immune responses.
Purpose of the Study:
- To review current evidence on the anti-tumor immune activity of oncolytic measles virus (MeV).
- To explore MeV's mechanisms, including oncolysis, immunogenic cell death, and immune cell activation.
- To discuss MeV's impact on the tumor microenvironment and potential for enhancement.
Main Methods:
- Review of preclinical and clinical data on measles virus (MeV) as a cancer immunotherapeutic.
- Analysis of MeV's role in the cancer immunity cycle, including antigen presentation and T cell responses.
- Evaluation of tumor microenvironment modulation and anti-viral immunity.
Main Results:
- Measles virus (MeV) exhibits oncolytic activity and induces immunogenic cell death.
- MeV activates antigen-presenting cells and promotes T cell priming and effector functions.
- Clinical data suggest MeV's potential in treating cancer patients, with ongoing trials.
Conclusions:
- Oncolytic measles virus (MeV) demonstrates significant anti-tumor immune activity.
- Vector engineering offers avenues for enhancing MeV-based cancer immunotherapy.
- Further research and immunomonitoring are crucial for optimizing MeV therapies.
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