tetano
Editor, Senior Moderator
Clin Transl Immunology
. 2025 Sep 19;14(9):e70051.
doi: 10.1002/cti2.70051. eCollection 2025. Lack of immunogenicity for an influenza-derived peptide across the HLA-B44 supertype molecules
Samuel Liwei Leong[SUP] 1 2 [/SUP], Janesha C Maddumage[SUP] 1 2 [/SUP], Stephanie Gras[SUP] 1 2 3 [/SUP], Emma J Grant[SUP] 1 2 3 [/SUP]
Affiliations
Objectives: CD8[SUP]+[/SUP] T cells are protective against influenza and there is an interest in designing a future CD8[SUP]+[/SUP] T-cell-mediated vaccine. However, a significant challenge is the extensive polymorphism of Human Leukocyte Antigen class I (HLA-I) molecules, the targets of CD8[SUP]+[/SUP] T cells. Despite this, HLA supertypes have been defined as a subset of HLA-I molecules sharing similar peptide motif preferences that may present overlapping peptide repertoires. Therefore, selecting immunogenic peptides presented by a range of HLA-I molecules for inclusion in a vaccine may partially overcome the challenge presented by HLA-I polymorphism.
Methods: In this study, we investigated the presentation and immunogenicity of a known HLA-B*44:03-restricted influenza-derived peptide NS1[SUB]195-203[/SUB] across the HLA-B44 supertype. Using TFold and AlphaFold2, we predicted the structures of the NS1[SUB]195-203[/SUB] bound by the HLA-B44 supertype molecules, including HLA-B*44:02, HLA-B*44:03, HLA-B*40:01, HLA-B*40:01 and HLA-B*45:01. Peripheral blood mononuclear cells (PBMCs) isolated from donors expressing one of these HLA-B44 supertype molecules were used to generate CD8[SUP]+[/SUP] T-cell lines against the NS1[SUB]195-203[/SUB] peptide and assess its immunogenicity via intracellular cytokine staining assay.
Results: The structures predicted with TFold and AlphaFold2 of the NS1[SUB]195-203[/SUB] peptide in complex with the HLA-B44 allomorphs were overall similar, with some notable differences at the peptide P9-Trp. A polyfunctional NS1[SUB]195-203[/SUB]-specific CD8[SUP]+[/SUP] T-cell response was observed in HLA-B*44:03[SUP]+[/SUP] and HLA-B*44:02[SUP]+[/SUP] samples; however, minimal responses were observed in the three other HLA-B44[SUP]+[/SUP] supertype molecules.
Conclusion: Although HLA molecules from the same supertype may be able to present the same peptide, this will not always result in CD8[SUP]+[/SUP] T-cell responses. As such, HLA-I supertypes, defined based on peptide binding motif and presentation, do not include information on immunogenicity and are not currently able to be used on their own to select epitopes as vaccine candidates. However, new knowledge on HLA supertypes may help curate sets of peptides that are potential vaccine targets and applicable to a range of HLA allomorphs.
Keywords: CD8+ T cells; HLA‐B44 supertype; HLA‐I supertype; immunogenicity; influenza; structural prediction.
. 2025 Sep 19;14(9):e70051.
doi: 10.1002/cti2.70051. eCollection 2025. Lack of immunogenicity for an influenza-derived peptide across the HLA-B44 supertype molecules
Samuel Liwei Leong[SUP] 1 2 [/SUP], Janesha C Maddumage[SUP] 1 2 [/SUP], Stephanie Gras[SUP] 1 2 3 [/SUP], Emma J Grant[SUP] 1 2 3 [/SUP]
Affiliations
- PMID: 40980484
- PMCID: PMC12447248
- DOI: 10.1002/cti2.70051
Objectives: CD8[SUP]+[/SUP] T cells are protective against influenza and there is an interest in designing a future CD8[SUP]+[/SUP] T-cell-mediated vaccine. However, a significant challenge is the extensive polymorphism of Human Leukocyte Antigen class I (HLA-I) molecules, the targets of CD8[SUP]+[/SUP] T cells. Despite this, HLA supertypes have been defined as a subset of HLA-I molecules sharing similar peptide motif preferences that may present overlapping peptide repertoires. Therefore, selecting immunogenic peptides presented by a range of HLA-I molecules for inclusion in a vaccine may partially overcome the challenge presented by HLA-I polymorphism.
Methods: In this study, we investigated the presentation and immunogenicity of a known HLA-B*44:03-restricted influenza-derived peptide NS1[SUB]195-203[/SUB] across the HLA-B44 supertype. Using TFold and AlphaFold2, we predicted the structures of the NS1[SUB]195-203[/SUB] bound by the HLA-B44 supertype molecules, including HLA-B*44:02, HLA-B*44:03, HLA-B*40:01, HLA-B*40:01 and HLA-B*45:01. Peripheral blood mononuclear cells (PBMCs) isolated from donors expressing one of these HLA-B44 supertype molecules were used to generate CD8[SUP]+[/SUP] T-cell lines against the NS1[SUB]195-203[/SUB] peptide and assess its immunogenicity via intracellular cytokine staining assay.
Results: The structures predicted with TFold and AlphaFold2 of the NS1[SUB]195-203[/SUB] peptide in complex with the HLA-B44 allomorphs were overall similar, with some notable differences at the peptide P9-Trp. A polyfunctional NS1[SUB]195-203[/SUB]-specific CD8[SUP]+[/SUP] T-cell response was observed in HLA-B*44:03[SUP]+[/SUP] and HLA-B*44:02[SUP]+[/SUP] samples; however, minimal responses were observed in the three other HLA-B44[SUP]+[/SUP] supertype molecules.
Conclusion: Although HLA molecules from the same supertype may be able to present the same peptide, this will not always result in CD8[SUP]+[/SUP] T-cell responses. As such, HLA-I supertypes, defined based on peptide binding motif and presentation, do not include information on immunogenicity and are not currently able to be used on their own to select epitopes as vaccine candidates. However, new knowledge on HLA supertypes may help curate sets of peptides that are potential vaccine targets and applicable to a range of HLA allomorphs.
Keywords: CD8+ T cells; HLA‐B44 supertype; HLA‐I supertype; immunogenicity; influenza; structural prediction.