A mechanistic basis and a conceptual framework for the selection and optimization of TCRs for adoptive immunotherapy are provided for the selection and optimization of TCRs for adoptive immunotherapy.
Abstract
Glypican-3 (GPC3) is a promising target in adoptive T-cell therapy for hepatocellular carcinoma (HCC). TCR-A and TCR-B are two recently identified GPC3-specific TCRs recognizing the same HLA-A*02:01-restricted epitope but displaying markedly different therapeutic efficacy. To define the determinants of productive TCR-antigen recognition, we integrated high-resolution structures of both binary pMHC and ternary TCR:pMHC complexes, biolayer interferometry, peptide mutagenesis, target-cell conjugation assays, repetitive antigen challenge (RAC) and in vivo models. Structurally, conformational permissiveness of the immunodominant GPC3(522-530) peptide within HLA-A*02:01’s groove is central for productive TCR docking, with TCR-B presenting slower association but prolonged dwell time. Functional divergence emerged during target-cell engagement and amplified under RAC conditions, where TCR-B sustained cytotoxic activity while TCR-A progressively lost function. This superior functional endurance translated into complete tumor eradication and durable responses in vivo. These findings provide a mechanistic basis and a conceptual framework for the selection and optimization of TCRs for adoptive immunotherapy.
TCR-mimetic CAR-T combines antibody-based targeting with physiological TCR signaling, yet suboptimal co-stimulation and safety risks remain key barriers for solid tumor therapy. The prevailing assumption that stronger co-stimulation yields superior efficacy has not been systematically tested in TCR-mimetic CAR-T ar...
Wei Du, Si-Qi Li, Shao-Mei Gan et al.· Frontiers in Immunology· 0 citations
Development of effective vaccines and targeted immunotherapies for cancer, autoimmunity, allergy, and infectious diseases requires comprehensive understanding of functionality and antigenic specificity of involved T cell clones. A major technical challenge remains the high-throughput identification of antigen-speci...
E. Egorov, V. Kriukova, I. A. Shagina et al.· Scientific Reports· 0 citations
T-cell immunity acts as a major defense system against controlling viral infections in vertebrates. During viral entry, innate immune cells degrade the viral proteins (antigens) and present them on their surface via Major Histocompatibility (MHC) proteins. T-cell receptors (TCRs) recognize these antigens/peptides prese...
Jaya Vasavi Pamidimukkala, Roshan Balaji, N. Bhatt et al.· 0 citations
T cell antigen-specific immunity depends on pairwise interactions between T cell receptors and peptide- MHC, yet isolating the TCR-pMHC pairs that drive productive engagement remains a major obstacle for antigen-specific therapeutics and for decoding TCR specificity. We overcome this by co-encoding TCR and pMHC in a si...
L. Liu, Seung Won Shin, Kevin M. Joslin et al.· bioRxiv· 0 citations
ABSTRACT Redirection of T lymphocytes toward cancer cells has been one of the most promising treatment concepts in oncology developed over the past years and leading to multiple regulatory approvals for both adoptive cell therapy (ACT) and T-cell-engaging bispecific (TEB) molecules. However, progress has been achieved...
M. Hofmann, F. Unverdorben, M. Pszolla et al.· mAbs· 0 citations
Public T cell receptors (TCRs) recurrently emerge across individuals in response to common pathogens, yet the structural and biophysical basis distinguishing public from private clonotypes remains incompletely defined. Here, we combine epitope mapping, single-cell TCR sequencing, and single-particle cryo-electron m...
Caner Akıl, Yan-Chun Peng, Julia McCarthy et al.· Nature Communications· 0 citations
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