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Studying the Effects of Tumor-Secreted Paracrine Ligands on Macrophage Activation using Co-Culture with Permeable Membrane Supports
Published on: November 28, 2019
Altered epitopes enhance macrophage-mediated anti-tumour immunity to low-immunogenic tumour mutations
Qiumin Yu1, Tingran Zhang1, Tiandi He1
1Jiangsu Key Laboratory of Druggability of Biopharmaceuticals and State Key Laboratory of Natural Medicines, School of Life Science and Technology, China Pharmaceutical University, Nanjing, China.
Abstract:
Personalized neoantigen therapy has shown long-term and stable efficacy in specific patient populations. However, not all patients have sufficient levels of neoantigens for treatment. Although somatic mutations are commonly found in tumours, a significant portion of these mutations do not trigger an immune response. Patients with low mutation burdens continue to exhibit unresponsiveness to this treatment. We propose a design paradigm for neoantigen vaccines by utilizing the highly immunogenic unnatural amino acid p-nitrophenylalanine (pNO2Phe) for sequence alteration of somatic mutations that failed to generate neoepitopes. This enhances the immunogenicity of the mutations and transforms it into a suitable candidate for immunotherapy. The nitrated altered epitope vaccines designed according to this paradigm is capable of activating circulating CD8+ T cells and inducing immune cross-reactivity against autologous mutated epitopes in different MHC backgrounds (H-2Kb, H-2Kd, and human HLA-A02:01), leading to the elimination of tumour cells carrying the mutation. After immunization with the altered epitopes, tumour growth was significantly inhibited. It is noteworthy that nitrated epitopes induce tumour-infiltrating macrophages to differentiate into the M1 phenotype, surprisingly enhancing the MHC II molecule presenting pathway of macrophages. Nitrated epitope-treated macrophages have the potential to cross-activate CD4+ and CD8+ T cells, which may explain why pNO2Phe can enhance the immunogenicity of epitopes. Meanwhile, the immunosuppressive microenvironment of the tumour is altered due to the activation of macrophages. The nitrated neoantigen vaccine strategy enables the design of vaccines targeting non-immunogenic tumour mutations, expanding the pool of potential peptides for personalized and shared novel antigen therapy. This approach provides treatment opportunities for patients previously ineligible for new antigen vaccine therapy.
Insights
This study introduces a novel neoantigen vaccine strategy using unnatural amino acids to enhance tumor immunogenicity. This approach expands treatment options for patients with low mutation burdens, improving cancer immunotherapy efficacy.
Area of Science:
- Immunology
- Oncology
- Vaccine Development
Background:
- Personalized neoantigen therapy shows promise but is limited by insufficient neoantigen levels in some patients.
- Many somatic mutations in tumors do not elicit an immune response, rendering patients with low mutation burdens unresponsive to current therapies.
Purpose of the Study:
- To develop a novel vaccine design paradigm to enhance the immunogenicity of non-immunogenic tumor mutations.
- To enable neoantigen vaccine therapy for a broader patient population, including those with low tumor mutation burdens.
Main Methods:
- Utilized the unnatural amino acid p-nitrophenylalanine (pNO2Phe) to alter somatic mutations, creating nitrated altered epitopes.
- Vaccinated mice with nitrated altered epitopes and assessed T cell activation, immune cross-reactivity, and tumor elimination.
- Investigated the effect of nitrated epitopes on tumor-infiltrating macrophages and the tumor microenvironment.
Main Results:
- Nitrated altered epitope vaccines activated CD8+ T cells and induced cross-reactivity against autologous mutated epitopes in various MHC backgrounds.
- Significantly inhibited tumor growth and altered the tumor microenvironment by promoting M1 macrophage differentiation.
- Demonstrated that nitrated epitopes enhance MHC II presentation in macrophages, potentially cross-activating CD4+ and CD8+ T cells.
Conclusions:
- The nitrated neoantigen vaccine strategy effectively targets non-immunogenic tumor mutations, expanding the scope of personalized and shared antigen therapies.
- This approach offers new treatment opportunities for patients previously ineligible for neoantigen vaccine therapy due to low mutation burdens.
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