Molecular Immunology2022,Vol.14414.DOI:10.1016/j.molimm.2021.11.015

CDR3 binding chemistry controls TCR V-domain rotational probability and germline CDR2 scanning of polymorphic MHC

Murray, Joseph S.
Molecular Immunology2022,Vol.14414.DOI:10.1016/j.molimm.2021.11.015

CDR3 binding chemistry controls TCR V-domain rotational probability and germline CDR2 scanning of polymorphic MHC

Murray, Joseph S.1
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作者信息

  • 1. Xenolaus Genet LLC
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Abstract

The mechanism which adapts the T-cell antigen receptor (TCR) within a given major histocompatibility complex (MHC/HLA) genotype is essential for protection against pathogens. Historically attributed to relative affinity, genetically vast TCRs are surprisingly focused towards a micromolar affinity for their respective peptide (p) plus MHC (pMHC) ligands. Thus, the somatic diversity of the TCR with respect to MHC-restriction, and (ultimately) to pathogens, remains enigmatic. Here, we derive a triple integral solution (from fixed geometry) for any given V domain in TCR bound to pMHC. Solved complexes involving HLA-DR and HLA-DQ, where genetic linkage to the TCR is most profound, were examined in detail. Certain V domains displayed rare geometry within this panel-specifying a restricted rotational probability/volumetric density (dV). Remarkably, hydrogen (H) bond charge-relays distinguished these structures from the others; suggesting that CDR3 binding chemistry dictates CDR2 contacts on the opposite MHC-II alpha helix. Together, these data suggest that TCR recapitulate dV and specialise target pMHC recognition. As such, there are implications for the design of TCR-based therapeutics.

Key words

T-cell receptor (TCR)/Major histocompatibility complex (MHC)/Clonal selection/MHC restriction/Protein chemistry/Mathematical biology/T-CELL-RECEPTOR/MAJOR HISTOCOMPATIBILITY COMPLEX/HUMAN AUTOIMMUNE TCR/CLASS-II/ANTIGEN/RECOGNITION/EVOLUTION/PEPTIDE/SELF/SPECIFICITY

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出版年

2022
Molecular Immunology

Molecular Immunology

ISTP
ISSN:0161-5890
被引量1
参考文献量45
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