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Updated: Jan 23, 2026

Enrichment and Characterization of the Tumor Immune and Non-immune Microenvironments in Established Subcutaneous Murine Tumors
Published on: June 7, 2018
Radiation therapy and anti-tumor immunity: exposing immunogenic mutations to the immune system
Claire Lhuillier1, Nils-Petter Rudqvist1, Olivier Elemento2,3,4
1Department of Radiation Oncology, Weill Cornell Medicine, Stich Radiation Oncology Center, 525 East 68th Street, New York, NY, 10065, USA.
Abstract:
The expression of antigens that are recognized by self-reactive T cells is essential for immune-mediated tumor rejection by immune checkpoint blockade (ICB) therapy. Growing evidence suggests that mutation-associated neoantigens drive ICB responses in tumors with high mutational burden. In most patients, only a few of the mutations in the cancer exome that are predicted to be immunogenic are recognized by T cells. One factor that limits this recognition is the level of expression of the mutated gene product in cancer cells. Substantial preclinical data show that radiation can convert the irradiated tumor into a site for priming of tumor-specific T cells, that is, an in situ vaccine, and can induce responses in otherwise ICB-resistant tumors. Critical for radiation-elicited T-cell activation is the induction of viral mimicry, which is mediated by the accumulation of cytosolic DNA in the irradiated cells, with consequent activation of the cyclic GMP-AMP synthase (cGAS)/stimulator of interferon (IFN) genes (STING) pathway and downstream production of type I IFN and other pro-inflammatory cytokines. Recent data suggest that radiation can also enhance cancer cell antigenicity by upregulating the expression of a large number of genes that are involved in the response to DNA damage and cellular stress, thus potentially exposing immunogenic mutations to the immune system. Here, we discuss how the principles of antigen presentation favor the presentation of peptides that are derived from newly synthesized proteins in irradiated cells. These concepts support a model that incorporates the presence of immunogenic mutations in genes that are upregulated by radiation to predict which patients might benefit from treatment with combinations of radiotherapy and ICB.
Insights
Radiation therapy can enhance cancer treatments by acting as an in situ vaccine. It boosts the immune system
Area of Science:
- Immunology
- Radiation Oncology
- Cancer Therapy
Background:
- Immune checkpoint blockade (ICB) therapy relies on T cell recognition of tumor antigens.
- Mutation-associated neoantigens are key drivers of ICB response in highly mutated tumors.
- Limited T cell recognition of immunogenic mutations is a barrier to effective ICB therapy.
Purpose of the Study:
- To explore how radiation therapy can enhance cancer antigen presentation and T cell responses.
- To discuss the mechanisms by which radiation induces viral mimicry and upregulates antigen expression.
- To propose a model for predicting patient response to combined radiotherapy and ICB.
Main Methods:
- Review of preclinical data on radiation's effects on tumor immunity.
- Discussion of antigen presentation principles in irradiated cells.
- Integration of findings to support a predictive model.
Main Results:
- Radiation converts tumors into in situ vaccines, priming tumor-specific T cells.
- Radiation induces viral mimicry via cytosolic DNA accumulation, activating the cGAS/STING pathway.
- Radiation upregulates DNA damage and stress response genes, potentially exposing immunogenic mutations.
Conclusions:
- Radiation enhances cancer cell antigenicity and T cell activation.
- Principles of antigen presentation favor peptides from newly synthesized proteins in irradiated cells.
- A model incorporating radiation-induced gene upregulation and immunogenic mutations can predict response to combined radiotherapy and ICB.
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