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Updated: Sep 25, 2025

Paramyxoviruses for Tumor-targeted Immunomodulation: Design and Evaluation Ex Vivo
Published on: January 7, 2019
Immunogenicity and therapeutic targeting of a public neoantigen derived from mutated PIK3CA
Smita S Chandran1,2,3, Jiaqi Ma4,5, Martin G Klatt6
1Human Oncology and Pathogenesis Program (HOPP), Immuno-Oncology Service, Memorial Sloan Kettering Cancer Center, New York, NY, USA. chandrs1@mskcc.org.
Abstract:
Public neoantigens (NeoAgs) represent an elite class of shared cancer-specific epitopes derived from recurrently mutated driver genes. Here we describe a high-throughput platform combining single-cell transcriptomic and T cell receptor (TCR) sequencing to establish whether mutant PIK3CA, among the most frequently genomically altered driver oncogenes, generates an immunogenic public NeoAg. Using this strategy, we developed a panel of TCRs that recognize an endogenously processed neopeptide encompassing a common PIK3CA hotspot mutation restricted by the prevalent human leukocyte antigen (HLA)-A*03:01 allele. Mechanistically, immunogenicity to this public NeoAg arises from enhanced neopeptide/HLA complex stability caused by a preferred HLA anchor substitution. Structural studies indicated that the HLA-bound neopeptide presents a comparatively 'featureless' surface dominated by the peptide's backbone. To bind this epitope with high specificity and affinity, we discovered that a lead TCR clinical candidate engages the neopeptide through an extended interface facilitated by an unusually long CDR3β loop. In patients with diverse malignancies, we observed NeoAg clonal conservation and spontaneous immunogenicity to the neoepitope. Finally, adoptive transfer of TCR-engineered T cells led to tumor regression in vivo in mice bearing PIK3CA-mutant tumors but not wild-type PIK3CA tumors. Together, these findings establish the immunogenicity and therapeutic potential of a mutant PIK3CA-derived public NeoAg.
Insights
Researchers identified a shared cancer neoantigen from the PIK3CA gene. This public neoantigen elicits a T cell response and demonstrates therapeutic potential in preclinical models, offering new avenues for cancer immunotherapy.
Area of Science:
- Immunology
- Oncology
- Molecular Biology
Background:
- Public neoantigens (NeoAgs) are shared cancer-specific epitopes from recurrently mutated driver genes.
- PIK3CA mutations are frequent in cancer, making them a target for NeoAg discovery.
Purpose of the Study:
- To investigate if mutant PIK3CA generates an immunogenic public NeoAg.
- To develop and characterize T cell receptors (TCRs) targeting this NeoAg.
Main Methods:
- High-throughput platform combining single-cell transcriptomic and TCR sequencing.
- Development of TCRs recognizing a PIK3CA-mutant neopeptide presented by HLA-A*03:01.
- Structural studies of neopeptide/HLA complex and TCR interaction.
- In vivo studies using adoptive transfer of TCR-engineered T cells in mouse models.
Main Results:
- Identified a public NeoAg derived from a common PIK3CA hotspot mutation.
- Developed TCRs with high specificity and affinity for the neopeptide/HLA complex.
- Observed NeoAg clonal conservation and spontaneous immunogenicity in cancer patients.
- Demonstrated tumor regression in vivo in PIK3CA-mutant tumors following TCR-engineered T cell therapy.
Conclusions:
- Established the immunogenicity of a mutant PIK3CA-derived public NeoAg.
- Highlighted the therapeutic potential of targeting this NeoAg for cancer treatment.
- Provided mechanistic insights into NeoAg recognition and TCR binding.
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