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Research Article: Peptide optimization to improve antigen presentation and antitumor responses in sarcoma

Date Published: 2026-10-01

Abstract:
Sarcomas are rare and heterogeneous malignancies for which therapeutic options remain limited, particularly in advanced disease. Standard treatments, including surgery, radiotherapy, chemotherapy, and approved targeted agents, provide marginal improvements in progression-free and overall survival, highlighting the need for immunotherapeutic strategies. Therapeutic cancer vaccines represent a promising strategy, but clinical efficacy has been limited by low antigen immunogenicity and an immunosuppressive tumor microenvironment (TME). Enhancing antigen presentation and T-cell receptor (TCR) engagement through heteroclitic peptide engineering may overcome immune tolerance and improve vaccine efficacy. Preliminary data from our group demonstrate that heteroclitic peptides modified at TCR-facing and anchor residues enhance antigen-specific T-cell recognition, cross-reactivity with wild-type epitopes, and tumor control in preclinical models. In this study, we aim to design and validate optimized heteroclitic epitopes derived from sarcoma-associated TAAs. We developed an integrated computational and experimental workflow to identify and optimize HLA-A*02:01-restricted epitopes derived from sarcoma-associated TAAs. Candidate wild-type (WT) peptides were selected using NetMHCpan 4.1 based on predicted HLA binding affinity and subsequently engineered through systematic amino acid substitutions to generate heteroclitic variants. Optimized peptides were evaluated by structural modeling and molecular docking, followed by experimental in vitro validation using T2-cell HLA stabilization assays. Their immunogenicity was assessed ex vivo in peripheral blood mononuclear cells (PBMCs) isolated from HLA-A*02:01-positive sarcoma patients using IFN-? ELISpot and peptide–HLA dextramer analyses. The sequential optimization strategy generated heteroclitic variants with markedly improved predicted HLA-A*02:01 binding for most target proteins. Structural modeling indicated preservation of the peptide backbone and TCR-accessible surface for the majority of selected variants. These predictions were supported experimentally: several heteroclitic peptides enhanced HLA-A*02:01 stabilization and prolonged peptide–MHC complex persistence in T2 cells. Ex vivo, optimized peptides induced stronger antigen-specific IFN-? responses than their wild-type counterparts, with significant increases for SET, CAGE, PTPN1 and MAGE-A3, while multimer staining demonstrated recognition of heteroclitic peptide–HLA complexes by wild-type-primed CD8 + T cells. These findings establish a transferable workflow for engineering more immunogenic, yet antigenically faithful, HLA-A*02:01-restricted epitopes. Rational heteroclitic optimization may therefore provide a useful platform for the development of next-generation therapeutic vaccines for sarcoma and other tumors with low intrinsic immunogenicity.

Introduction:
Sarcomas represent a highly heterogeneous group of mesenchymal malignancies, characterized by their aggressive course and poor response to treatment. They account for less than 1% of all adult solid malignancies and approximately 15% of pediatric cancers ( 1 , 2 ). According to current classifications, sarcomas are broadly categorized into bone sarcomas, visceral sarcomas, most notably gastrointestinal stromal tumors (GIST) and soft tissue sarcomas (STS), which arise from connective, subcutaneous, and other soft…

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