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Published on: September 1, 2018
Integrating Multisector Molecular Characterization into Personalized Peptide Vaccine Design for Patients with Newly
Tanner M Johanns1,2,3, Elizabeth A R Garfinkle4, Katherine E Miller4
1Division of Medical Oncology, Washington University School of Medicine, St. Louis, Missouri.
Purpose:
Outcomes for patients with glioblastoma (GBM) remain poor despite multimodality treatment with surgery, radiation, and chemotherapy. There are few immunotherapy options due to the lack of tumor immunogenicity. Several clinical trials have reported promising results with cancer vaccines. To date, studies have used data from a single tumor site to identify targetable antigens, but this approach limits the antigen pool and is antithetical to the heterogeneity of GBM. We have implemented multisector sequencing to increase the pool of neoantigens across the GBM genomic landscape that can be incorporated into personalized peptide vaccines called NeoVax.
Patients And Methods:
In this study, we report the findings of four patients enrolled onto the NeoVax clinical trial (NCT0342209).
Results:
Immune reactivity to NeoVax neoantigens was assessed in peripheral blood mononuclear cells pre- and post-NeoVax for patients 1 to 3 using IFNγ-ELISPOT assay. A statistically significant increase in IFNγ producing T cells at the post-NeoVax time point for several neoantigens was observed. Furthermore, a post-NeoVax tumor biopsy was obtained from patient 3 and, upon evaluation, revealed evidence of infiltrating, clonally expanded T cells.
Conclusions:
Collectively, our findings suggest that NeoVax stimulated the expansion of neoantigen-specific effector T cells and provide encouraging results to aid in the development of future neoantigen vaccine-based clinical trials in patients with GBM. Herein, we demonstrate the feasibility of incorporating multisector sampling in cancer vaccine design and provide information on the clinical applicability of clonality, distribution, and immunogenicity of the neoantigen landscape in patients with GBM.
Insights
NeoVax, a personalized cancer vaccine, successfully stimulated immune responses in glioblastoma patients. This approach, using multisector sequencing, expands neoantigen targets for improved immunotherapy development.
Area of Science:
- Oncology
- Immunotherapy
- Genomics
Background:
- Glioblastoma (GBM) outcomes remain poor despite standard treatments.
- Limited immunotherapy options exist due to low tumor immunogenicity.
- Current cancer vaccine studies use limited single-tumor site data, neglecting GBM heterogeneity.
Purpose of the Study:
- To evaluate the efficacy of NeoVax, a personalized peptide vaccine, in glioblastoma patients.
- To assess the impact of multisector sequencing on expanding neoantigen targets for cancer vaccines.
- To report findings from four patients on the NeoVax clinical trial (NCT0342209).
Main Methods:
- Multisector sequencing to identify a broader neoantigen pool across the GBM genomic landscape.
- Development of personalized peptide vaccines (NeoVax).
- Assessment of immune reactivity using IFNγ-ELISPOT assay on peripheral blood mononuclear cells pre- and post-vaccination.
- Analysis of tumor biopsy for T cell infiltration and expansion.
Main Results:
- A statistically significant increase in IFNγ-producing T cells specific to NeoVax neoantigens was observed post-vaccination.
- Tumor biopsy analysis revealed infiltrating, clonally expanded T cells in one patient.
- Demonstrated feasibility of multisector sampling in cancer vaccine design.
Conclusions:
- NeoVax effectively stimulates neoantigen-specific effector T cells in glioblastoma patients.
- Findings support the development of future neoantigen vaccine-based clinical trials for GBM.
- Highlights the clinical applicability of multisector sampling for understanding the neoantigen landscape.
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