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Updated: Nov 17, 2025

Experimental Melanoma Immunotherapy Model Using Tumor Vaccination with a Hematopoietic Cytokine
Published on: February 24, 2023
Epitope spreading toward wild-type melanocyte-lineage antigens rescues suboptimal immune checkpoint blockade
Jennifer A Lo1,2, Masayoshi Kawakubo1, Vikram R Juneja3,4
1Cutaneous Biology Research Center, Department of Dermatology, Massachusetts General Hospital and Harvard Medical School, Boston, MA 02114, USA.
Abstract:
Although immune checkpoint inhibitors (ICIs), such as anti-programmed cell death protein-1 (PD-1), can deliver durable antitumor effects, most patients with cancer fail to respond. Recent studies suggest that ICI efficacy correlates with a higher load of tumor-specific neoantigens and development of vitiligo in patients with melanoma. Here, we report that patients with low melanoma neoantigen burdens who responded to ICI had tumors with higher expression of pigmentation-related genes. Moreover, expansion of peripheral blood CD8+ T cell populations specific for melanocyte antigens was observed only in patients who responded to anti-PD-1 therapy, suggesting that ICI can promote breakdown of tolerance toward tumor-lineage self-antigens. In a mouse model of poorly immunogenic melanomas, spreading of epitope recognition toward wild-type melanocyte antigens was associated with markedly improved anti-PD-1 efficacy in two independent approaches: introduction of neoantigens by ultraviolet (UV) B radiation mutagenesis or the therapeutic combination of ablative fractional photothermolysis plus imiquimod. Complete responses against UV mutation-bearing tumors after anti-PD-1 resulted in protection from subsequent engraftment of melanomas lacking any shared neoantigens, as well as pancreatic adenocarcinomas forcibly overexpressing melanocyte-lineage antigens. Our data demonstrate that somatic mutations are sufficient to provoke strong antitumor responses after checkpoint blockade, but long-term responses are not restricted to these putative neoantigens. Epitope spreading toward T cell recognition of wild-type tumor-lineage self-antigens represents a common pathway for successful response to ICI, which can be evoked in neoantigen-deficient tumors by combination therapy with ablative fractional photothermolysis and imiquimod.
Insights
Immune checkpoint inhibitors (ICIs) can be more effective when T cells recognize self-antigens, not just neoantigens. Combination therapy can induce this response in tumors lacking neoantigens, improving anti-PD-1 efficacy.
Area of Science:
- Immunology
- Oncology
- Dermatology
Background:
- Immune checkpoint inhibitors (ICIs) like anti-PD-1 offer durable antitumor effects but have limited response rates.
- ICI efficacy is linked to neoantigen load and vitiligo in melanoma patients.
- Response in low neoantigen melanoma patients correlates with pigmentation gene expression.
Purpose of the Study:
- Investigate the role of self-antigen recognition in ICI response.
- Explore mechanisms of ICI efficacy beyond neoantigens.
- Evaluate combination therapies for enhancing ICI effectiveness in neoantigen-deficient tumors.
Main Methods:
- Analysis of T cell populations and gene expression in patients receiving anti-PD-1 therapy.
- Mouse models of melanoma treated with UV mutagenesis or combination therapy (ablative fractional photothermolysis + imiquimod).
- Assessment of antitumor responses and protective immunity post-treatment.
Main Results:
- Patients responding to anti-PD-1 showed CD8+ T cell expansion specific for melanocyte antigens.
- Epitope spreading to self-antigens enhanced anti-PD-1 efficacy in mouse models.
- Combination therapy induced responses in neoantigen-deficient melanomas, leading to cross-protection.
Conclusions:
- ICI therapy can break tolerance to tumor-lineage self-antigens.
- Epitope spreading to self-antigens is a key pathway for successful ICI response.
- Combination therapy can induce self-antigen recognition and improve ICI efficacy in challenging tumors.
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