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Paramyxoviruses for Tumor-targeted Immunomodulation: Design and Evaluation Ex Vivo
Published on: January 7, 2019
Targeting the tumor mutanome for personalized vaccination in a TMB low non-small cell lung cancer
Katy McCann1, Adrian von Witzleben1,2, Jaya Thomas1
1Cancer Research UK Southampton Experimental Cancer Medicine Centre, Cancer Sciences Unit, University of Southampton Faculty of Medicine, Southampton, UK.
Background:
Cancer is characterized by an accumulation of somatic mutations, of which a significant subset can generate cancer-specific neoepitopes that are recognized by autologous T cells. Such neoepitopes are emerging as important targets for cancer immunotherapy, including personalized cancer vaccination strategies.
Methods:
We used whole-exome and RNA sequencing analysis to identify potential neoantigens for a patient with non-small cell lung cancer. Thereafter, we assessed the autologous T-cell reactivity to the candidate neoantigens using a long peptide approach in a cultured interferon gamma ELISpot and tracked the neoantigen-specific T-cells in the tumor by T-cell receptor (TCR) sequencing. In parallel, identified gene variants were incorporated into a Modified Vaccinia Ankara-based vaccine, which was evaluated in the human leucocyte antigen A*0201 transgenic mouse model (HHD).
Results:
Sequencing revealed a tumor with a low mutational burden: 2219 sequence variants were identified from the primary tumor, of which 23 were expressed in the transcriptome, involving 18 gene products. We could demonstrate spontaneous T-cell responses to 5/18 (28%) mutated gene variants, and further analysis of the TCR repertoire of neoantigen-specific CD4+ and CD8+ T cells revealed TCR clonotypes that were expanded in both blood and tumor tissue. Following vaccination of HHD mice, de novo T-cell responses were generated to 4/18 (22%) mutated gene variants; T cells reactive against two variants were also evident in the autologous setting. Subsequently, we determined the major histocompatibility complex restriction of the T-cell responses and used in silico prediction tools to determine the likely neoepitopes.
Conclusions:
Our study demonstrates the feasibility of efficiently identifying tumor-specific neoantigens that can be targeted by vaccination in tumors with a low mutational burden, promising successful clinical exploitation, with trials currently underway.
Insights
This study identifies cancer-specific neoantigens in non-small cell lung cancer, demonstrating their potential for personalized cancer vaccines. These findings show feasibility even in tumors with low mutational burden, paving the way for new immunotherapies.
Area of Science:
- Immunology
- Oncology
- Genomics
Background:
- Cancer arises from accumulated somatic mutations, creating neoantigens recognized by T cells.
- Neoantigens are key targets for cancer immunotherapy and personalized vaccines.
Purpose of the Study:
- To identify neoantigens in non-small cell lung cancer (NSCLC).
- To assess T-cell reactivity against identified neoantigens.
- To evaluate a personalized vaccine strategy in a preclinical model.
Main Methods:
- Whole-exome and RNA sequencing for neoantigen discovery.
- Interferon-gamma ELISpot assay for T-cell reactivity.
- T-cell receptor sequencing to track neoantigen-specific T cells.
- Development and testing of a Modified Vaccinia Ankara-based vaccine in HHD mice.
Main Results:
- Identified 18 expressed mutated gene products in a low mutational burden NSCLC.
- Demonstrated spontaneous T-cell responses to 5 of 18 mutated genes.
- Vaccination in mice generated de novo T-cell responses to 4 of 18 mutated genes.
- Confirmed expanded T-cell clonotypes in blood and tumor tissue.
Conclusions:
- Efficiently identified tumor-specific neoantigens in low mutational burden tumors.
- Demonstrated feasibility of neoantigen-targeted vaccination.
- Highlights potential for clinical application in personalized cancer immunotherapy.
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