Bedside formulation of a personalized multi-neoantigen vaccine against mammary carcinoma
Mona O Mohsen1,2, Daniel E Speiser3, Justine Michaux4,5
1Department of Medical Oncology, Hamad Medical Corporation, Doha, Qatar mona.mohsen@dbmr.unibe.ch Michal.Bassani@chuv.ch.
Background:
Harnessing the immune system to purposely recognize and destroy tumors represents a significant breakthrough in clinical oncology. Non-synonymous mutations (neoantigenic peptides) were identified as powerful cancer targets. This knowledge can be exploited for further improvements of active immunotherapies, including cancer vaccines, as T cells specific for neoantigens are not attenuated by immune tolerance mechanism and do not harm healthy tissues. The current study aimed at developing an optimized multitarget vaccine using short or long neoantigenic peptides utilizing virus-like particles (VLPs) as an efficient vaccine platform.
Methods:
Mutations of murine mammary carcinoma cells were identified by integrating mass spectrometry-based immunopeptidomics and whole exome sequencing. Neoantigenic peptides were synthesized and covalently linked to virus-like nanoparticles using a Cu-free click chemistry method for easy preparation of vaccines against mouse mammary carcinoma.
Results:
As compared with short peptides, vaccination with long peptides was superior in the generation of neoantigen-specific CD4+ and CD8+ T cells, which readily produced interferon gamma (IFN-γ) and tumor-necrosis factor α (TNF-α). The resulting anti-tumor effect was associated with favorable immune re-polarization in the tumor microenvironment through reduction of myeloid-derived suppressor cells. Vaccination with long neoantigenic peptides also decreased post-surgical tumor recurrence and metastases, and prolonged mouse survival, despite the tumor's low mutational burden.
Conclusion:
Integrating mass spectrometry-based immunopeptidomics and whole exome sequencing is an efficient approach for identifying neoantigenic peptides. Our multitarget VLP-based vaccine shows a promising anti-tumor effect in an aggressive murine mammary carcinoma model. Future clinical application using this strategy is readily feasible and practical, as click chemistry coupling of personalized synthetic peptides to the nanoparticles can be done at the bedside directly before injection.
Insights
This study developed a novel cancer vaccine using virus-like particles (VLPs) and neoantigenic peptides. Long peptides demonstrated superior anti-tumor immunity by boosting T cells and reducing recurrence, offering a promising immunotherapy strategy.
Area of Science:
- Oncology
- Immunology
- Vaccine Development
Background:
- Harnessing the immune system is a key strategy in cancer treatment.
- Neoantigenic peptides derived from tumor mutations are effective targets for active immunotherapies.
- Virus-like particles (VLPs) serve as an efficient platform for developing cancer vaccines.
Purpose of the Study:
- To develop an optimized multitarget cancer vaccine using VLPs.
- To evaluate the efficacy of short versus long neoantigenic peptides in vaccine formulations.
- To investigate the anti-tumor immune response induced by VLP-based neoantigen vaccines.
Main Methods:
- Identification of neoantigenic peptides through integrated immunopeptidomics and whole exome sequencing.
- Synthesis of neoantigenic peptides and their covalent linkage to VLPs using click chemistry.
- Administration of VLP-based vaccines with short or long neoantigenic peptides to a murine mammary carcinoma model.
Main Results:
- Vaccination with long neoantigenic peptides generated robust neoantigen-specific CD4+ and CD8+ T cell responses, evidenced by interferon-gamma and tumor-necrosis factor-alpha production.
- The anti-tumor effect included immune re-polarization within the tumor microenvironment by reducing myeloid-derived suppressor cells.
- Long neoantigenic peptide vaccination decreased post-surgical tumor recurrence and metastasis, prolonging survival in mice with low tumor mutational burden.
Conclusions:
- Integrated immunopeptidomics and whole exome sequencing efficiently identify neoantigenic peptides for cancer vaccine development.
- The multitarget VLP-based vaccine demonstrated significant anti-tumor efficacy in a murine model.
- The strategy is clinically feasible due to the rapid, bedside preparation of personalized peptide-VLP conjugates using click chemistry.
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