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Paramyxoviruses for Tumor-targeted Immunomodulation: Design and Evaluation Ex Vivo
Published on: January 7, 2019
Oncolytic Viruses in Cancer Immunotherapy: From Molecular Engineering to Clinical Translation
Mohammad Fayyad-Kazan1, Sarah Al-Tameemi1, Allal Ouhtit2
1Department of Natural and Applied Sciences, College of Arts and Sciences, American University of Iraq-Baghdad (AUIB), Baghdad 10011, Iraq.
Abstract:
Cancer immunotherapy has transformed modern oncology, yet durable responses remain limited for many patients due to immune exclusion, adaptive resistance, and tumor heterogeneity. Oncolytic viruses (OVs) have emerged as a novel class of immunotherapeutics that unify direct tumor cytolysis with stimulation of antitumor immunity. By inducing immunogenic cell death (ICD) and releasing tumor-associated antigens (TAAs), OVs remodel the tumor microenvironment (TME) into an inflamed and immune-permissive niche capable of enabling systemic immune activation. Rapid advances in viral engineering have strengthened the translational potential of OVs through tumor-selective gene deletions, tumor-specific promoters, microRNA-based detargeting, and receptor-retargeting strategies that collectively enhance safety, specificity, and intratumoral propagation. Next-generation OVs are increasingly "armed" with immunostimulatory payloads-including cytokines, chemokines, checkpoint inhibitors, bispecific T-cell engagers, and suicide gene systems-allowing localized immune modulation with reduced systemic toxicity. These innovations have propelled significant clinical progress, exemplified by the approvals of talimogene laherparepvec (T-VEC), G47Δ, and H101, and have driven a surge of combination trials integrating OVs with immune checkpoint blockade, adoptive cell therapies, radiotherapy, and targeted therapies to overcome multilayered tumor immune resistance. Despite this momentum, clinical implementation remains challenged by antiviral immunity, heterogeneous viral distribution, stromal barriers, and dynamic interferon (IFN) signaling in the TME. Emerging delivery approaches, including carrier cell systems, nanotechnology-enabled viral shielding, and synthetic virology platforms, offer promising solutions to these limitations. Oncolytic virotherapy is rapidly evolving into a multifunctional immunotherapeutic platform capable of reshaping antitumor responses at both local and systemic levels. By integrating advanced viral engineering with rational combination strategies and innovative delivery technologies, OVs hold substantial potential to overcome current barriers in cancer immunotherapy and advance precision oncology. Continued translational research will be essential to fully harness their therapeutic impact and broaden their clinical applicability.
Insights
Oncolytic viruses (OVs) are a new cancer immunotherapy that directly kill tumors and boost the immune system. Advances in viral engineering and combination therapies show promise for overcoming treatment resistance.
Area of Science:
- Oncology
- Immunology
- Virology
Background:
- Cancer immunotherapy has limitations including immune exclusion and resistance.
- Oncolytic viruses (OVs) offer a dual approach: direct tumor lysis and immune stimulation.
- OVs induce immunogenic cell death and release tumor antigens, modifying the tumor microenvironment (TME).
Purpose of the Study:
- To review advances in oncolytic virus engineering and application.
- To discuss strategies for overcoming challenges in OV therapy.
- To highlight the potential of OVs in combination with other cancer treatments.
Main Methods:
- Review of viral engineering strategies (gene deletions, promoters, detargeting).
- Analysis of "armed" OVs with immunostimulatory payloads.
- Examination of combination therapies (checkpoint inhibitors, cell therapies, radiotherapy).
Main Results:
- Approved OVs (T-VEC, G47Δ, H101) demonstrate clinical progress.
- Combination trials show potential to overcome tumor immune resistance.
- Next-generation OVs are engineered for enhanced safety, specificity, and efficacy.
Conclusions:
- Oncolytic virotherapy is evolving into a versatile platform for reshaping antitumor responses.
- Overcoming challenges like antiviral immunity and viral distribution is key.
- Integrating advanced engineering, combinations, and delivery technologies will advance precision oncology.
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