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The Tumor-associated antigen-derived peptide–Major Histocompatibility Complex class I (TAA-pMHC-I) complex is a molecular assembly presented on the surface of nucleated cells, serving as a critical interface for immune surveillance (Janeway's Immunobiology). It consists of a short peptide fragment derived from intracellular proteins—such as those overexpressed, mutated, or aberrantly expressed in cancer—bound within the groove of an MHC class I molecule (Nature Reviews Cancer). This complex is specifically recognized by the T-cell receptor (TCR) of CD8+ cytotoxic T cells, which triggers a signaling cascade leading to the destruction of the target cell (PubMed). In oncology, TAA-pMHC-I complexes are highly valued targets because they allow therapeutic agents to address intracellular oncogenic drivers that are otherwise inaccessible to traditional antibody-based therapies (Walseng et al., 2017). Current therapeutic strategies targeting these complexes include TCR-engineered T cells (TCR-T), such as Afamitresgene autoleucel, and soluble TCR-bispecific engagers like Tebentafusp (FDA). These therapies are highly potent but require patients to possess a specific Human Leukocyte Antigen (HLA) allele, such as HLA-A*02:01, to ensure proper binding (NEJM). A significant challenge in targeting TAA-pMHC-I is the risk of off-target toxicity, where the therapeutic TCR may cross-react with similar peptide sequences presented on healthy tissues (Journal of Clinical Oncology). Additionally, tumors may escape detection by downregulating MHC expression or altering antigen processing pathways (Nature).
MHC-restricted T-cell receptor (TCR) binding and redirected T-cell cytotoxicity
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