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Updated: Feb 1, 2026

Ex Vivo Infection of Live Tissue with Oncolytic Viruses
Published on: June 25, 2011
Tumor Microenvironment Remodeling by Intratumoral Oncolytic Vaccinia Virus Enhances the Efficacy of Immune-Checkpoint
Hong Jae Chon1,2,3, Won Suk Lee1,2, Hannah Yang1,2
1Medical Oncology, CHA Bundang Medical Center, CHA University, Seongnam, Republic of Korea.
Purpose:
Cancer immunotherapy is a potent treatment modality, but its clinical benefit depends on the tumor's immune profile. Here, we used mJX-594 (JX), a targeted and GM-CSF-armed oncolytic vaccinia virus, as a strategy to remodel the tumor microenvironment (TME) and subsequently increase sensitivity to αPD-1 and/or αCTLA-4 immunotherapy.
Experimental Design:
The remodeling of the TME was determined using histologic, flow-cytometric, and NanoString immune profiling analyses. JX was intratumorally injected into implanted Renca kidney tumors or MMTV-PyMT transgenic mouse breast cancers with or without αPD-1 and/or αCTLA-4. Various combination regimens were used to evaluate immunotherapeutic anticancer responses.
Results:
Intratumoral injection of JX remodeled the TME through dynamic changes in the immune system, as shown by increased tumor-infiltrating T cells and upregulation of immune-related gene signatures. This remodeling induced conversion of a noninflamed tumor into an inflamed tumor. JX virotherapy led to enhanced abscopal effects in distant tumors, with increased intratumoral infiltration of CD8+ T cells. A depletion study revealed that GM-CSF is an indispensable regulator of anticancer efficacy of JX. Dual-combination therapy with intratumoral JX and systemic αPD-1 or αCTLA-4 further enhanced the anticancer immune response, regardless of various treatment schedules. Of note, triple combination immunotherapy with JX, αPD-1, and αCTLA-4 elicited the most potent anticancer immunity and induced complete tumor regression and long-term overall survival.
Conclusions:
Our results show that intratumoral JX treatment induces dramatic remodeling of the TME and more potently suppresses cancer progression with immune-checkpoint blockades by overcoming resistance to immunotherapy.
Insights
Oncolytic vaccinia virus (JX) reshapes the tumor microenvironment, enhancing cancer immunotherapy. Combination therapy with JX and immune checkpoint inhibitors (αPD-1/αCTLA-4) achieved complete tumor regression.
Area of Science:
- Oncology
- Immunology
- Virology
Background:
- Cancer immunotherapy efficacy is limited by tumor immune profiles.
- Oncolytic viruses offer a strategy to modify the tumor microenvironment (TME).
Purpose of the Study:
- To evaluate mJX-594 (JX), an oncolytic vaccinia virus, for TME remodeling.
- To enhance sensitivity to αPD-1 and αCTLA-4 immunotherapy.
Main Methods:
- Intratumoral injection of JX in mouse kidney and breast cancer models.
- Histologic, flow-cytometric, and NanoString immune profiling analyses.
- Combination therapy with JX and immune checkpoint inhibitors (αPD-1/αCTLA-4).
Main Results:
- JX treatment increased tumor-infiltrating T cells and immune gene signatures, converting noninflamed to inflamed tumors.
- JX virotherapy enhanced abscopal effects and CD8+ T cell infiltration.
- Combination therapy, especially triple therapy (JX, αPD-1, αCTLA-4), induced complete tumor regression and long-term survival.
Conclusions:
- Intratumoral JX treatment significantly remodels the TME.
- JX overcomes resistance to immunotherapy when combined with immune checkpoint blockades.
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