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Paramyxoviruses for Tumor-targeted Immunomodulation: Design and Evaluation Ex Vivo
Published on: January 7, 2019
Neoantigen-Encoded Oncolytic Viruses as Personalized Cancer Vaccines
1Department of Medical Laboratory Technology, Faculty of Applied Medical Sciences, University of Tabuk, Tabuk 47512, Saudi Arabia.
Abstract:
Neoantigen vaccines have revitalized cancer vaccination by targeting tumor-specific mutant epitopes largely absent from central tolerance. Yet, clinical benefits remain inconsistent, in part because conventional vaccine platforms often do not reliably deliver antigens within an inflammatory tumor context, struggle to overcome immunosuppressive tumor microenvironments, and may not rapidly adapt to tumor heterogeneity and evolution. Oncolytic viruses (OVs) provide a mechanistically distinct route to "vaccinate in situ" by coupling tumor-selective infection and immunogenic cancer cell death with local innate immune activation, antigen release, and remodeling of the tumor microenvironment. In parallel, advances in sequencing, neoantigen prediction (e.g., updated NetMHCpan and MHCflurry tools as of 2025), and antigen presentation validation have enabled rational selection of patient-specific targets. At the same time, modern OV engineering supports insertion of neoantigen payloads and immune-modulatory transgenes. Here, we summarized principles that underpin neoantigen-encoded OVs as personalized cancer vaccines, emphasizing how OV adjuvanticity and antigenicity interact to drive priming, epitope spreading, and durable systemic immunity. We discussed major OV platforms with respect to payload capacity, expression control, manufacturability, and clinical track records, including lessons learned from approved or late-stage OVs such as talimogene laherparepvec (T-VEC) and teserpaturev/G47Δ. We also discussed design choices for encoding neoantigens (polyepitope strings, minigenes, long peptides; class I/II balancing), prioritizing translational biomarkers and immune-monitoring strategies, and outlining regulatory and GMP considerations for "platform-plus-variable insert" products. Finally, we propose a pragmatic clinical workflow for rapid personalization to maximize therapeutic index. Tightly integrating neoantigen science with immunovirotherapy, including recent 2025 preclinical advances like oncolytic adenovirus neoantigen delivery sensitizing low-TMB tumors to PD-1 blockade, could enable next-generation personalized cancer vaccines capable of converting "cold" tumors into responsive, systemically controlled disease.
Insights
Oncolytic viruses (OVs) engineered with neoantigens offer a promising personalized cancer vaccine strategy. These OVs deliver tumor-specific antigens in situ, overcoming immunosuppression to generate durable systemic immunity.
Area of Science:
- Immunology
- Oncology
- Vaccinology
Background:
- Neoantigen vaccines target tumor-specific mutations but face challenges with delivery, tumor microenvironment, and heterogeneity.
- Conventional platforms struggle to induce robust anti-tumor immunity effectively.
- Oncolytic viruses (OVs) offer a novel approach by combining tumor lysis with immune stimulation.
Purpose of the Study:
- To summarize principles of neoantigen-encoded OVs as personalized cancer vaccines.
- To emphasize the interaction between OV adjuvanticity and antigenicity for immune priming and epitope spreading.
- To discuss OV platforms, neoantigen encoding strategies, and clinical/regulatory considerations.
Main Methods:
- Review of principles underpinning neoantigen-encoded OVs.
- Discussion of major OV platforms (e.g., T-VEC, G47Δ) regarding payload, control, manufacturability, and clinical data.
- Analysis of neoantigen encoding strategies (polyepitope strings, minigenes, long peptides) and immune monitoring.
Main Results:
- OVs can be engineered to deliver neoantigen payloads and immune-modulatory transgenes.
- OV adjuvanticity and antigenicity drive priming, epitope spreading, and durable systemic immunity.
- Recent advances show potential for sensitizing tumors to immunotherapy (e.g., PD-1 blockade).
Conclusions:
- Neoantigen-encoded OVs represent a next-generation personalized cancer vaccine strategy.
- Integrating neoantigen science with immunovirotherapy can convert "cold" tumors into responsive diseases.
- A pragmatic clinical workflow is proposed for rapid personalization and maximized therapeutic index.
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