TCR binding to peptide-MHC stabilizes a flexible recognition interface.
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B K Jakobsen | G. Gao | J. Bell | B. Jakobsen | J. Ladbury | P. A. van der Merwe | B. Willcox | J. Wyer | J I Bell | J E Ladbury | P A van der Merwe | B E Willcox | G F Gao | J R Wyer | Jessica R. Wyer | G. Gao
[1] P. Schatz. Use of Peptide Libraries to Map the Substrate Specificity of a Peptide-Modifying Enzyme: A 13 Residue Consensus Peptide Specifies Biotinylation in Escherichia coli , 1993, Bio/Technology.
[2] A. Tamura,et al. Significant discrepancies between van't Hoff and calorimetric enthalpies. , 1995, Proceedings of the National Academy of Sciences of the United States of America.
[3] C. Mohan,et al. Nucleosomal peptide epitopes for nephritis-inducing T helper cells of murine lupus , 1996, The Journal of experimental medicine.
[4] C. Milstein,et al. Kinetic maturation of an immune response , 1991, Nature.
[5] J. Strominger,et al. Molecular mimicry in T cell-mediated autoimmunity: Viral peptides activate human T cell clones specific for myelin basic protein , 1995, Cell.
[6] M. Palmer,et al. The T cell receptor from an influenza-A specific murine CTL clone. , 1989, Nucleic acids research.
[7] Z Reich,et al. Ligand recognition by alpha beta T cell receptors. , 1998, Annual review of immunology.
[8] L. A. Day,et al. THE KINETICS OF THE REACTIONS BETWEEN ANTIBODIES TO THE 2, 4 DINITROPHENYL GROUP AND SPECIFIC HAPTENS. * , 1963, Annals of the New York Academy of Sciences.
[9] D. F. Waugh,et al. Protein-protein interactions. , 1954, Advances in protein chemistry.
[10] P. Schuck,et al. Use of surface plasmon resonance to probe the equilibrium and dynamic aspects of interactions between biological macromolecules. , 1997, Annual review of biophysics and biomolecular structure.
[11] J. Rothbard,et al. Specific T cell recognition of minimally homologous peptides: evidence for multiple endogenous ligands. , 1995, Immunity.
[12] J. Ladbury,et al. Sensing the heat: the application of isothermal titration calorimetry to thermodynamic studies of biomolecular interactions. , 1996, Chemistry & biology.
[13] E. Sercarz,et al. Degenerate recognition of a dissimilar antigenic peptide by myelin basic protein-reactive T cells. Implications for thymic education and autoimmunity. , 1993, Journal of immunology.
[14] L R Pease,et al. Structural basis of plasticity in T cell receptor recognition of a self peptide-MHC antigen. , 1998, Science.
[15] W. Stites,et al. Protein−Protein Interactions: Interface Structure, Binding Thermodynamics, and Mutational Analysis , 1997 .
[16] R. Poljak,et al. Crystal structure of the complex of the variable domain of antibody D1.3 and turkey egg white lysozyme: a novel conformational change in antibody CDR-L3 selects for antigen. , 1996, Journal of molecular biology.
[17] R C Stevens,et al. Structural insights into the evolution of an antibody combining site. , 1997, Science.
[18] D. Mason,et al. Human cell-adhesion molecule CD2 binds CD58 (LFA-3) with a very low affinity and an extremely fast dissociation rate but does not bind CD48 or CD59. , 1994, Biochemistry.
[19] D. Mason,et al. A very high level of crossreactivity is an essential feature of the T-cell receptor. , 1998, Immunology today.
[20] M. Davis,et al. Use of global amino acid replacements to define the requirements for MHC binding and T cell recognition of moth cytochrome c (93-103). , 1994, Journal of immunology.
[21] C. Milstein,et al. Conformational isomerism and the diversity of antibodies. , 1994, Proceedings of the National Academy of Sciences of the United States of America.
[22] T. L. James. CHAPTER 6 – NMR STUDIES OF BIOMOLECULAR INTERACTIONS , 1975 .
[23] A. Barclay,et al. Analysis of cell-adhesion molecule interactions using surface plasmon resonance. , 1996, Current opinion in immunology.
[24] M. Davis,et al. Expression of a class II major histocompatibility complex (MHC) heterodimer in a lipid-linked form with enhanced peptide/soluble MHC complex formation at low pH , 1991, The Journal of experimental medicine.
[25] D. Madden. The three-dimensional structure of peptide-MHC complexes. , 1995, Annual review of immunology.
[26] S. Ikemizu,et al. CD2 and the nature of protein interactions mediating cell‐cell recognition , 1998, Immunological reviews.
[27] R. Phillips,et al. Escape of human immunodeficiency virus from immune control. , 1997, Annual review of immunology.
[28] G. I. Bell. Models for the specific adhesion of cells to cells. , 1978, Science.
[29] A. Barclay,et al. Transient intercellular adhesion: the importance of weak protein-protein interactions. , 1994, Trends in biochemical sciences.
[30] M. Davis,et al. Expression of T cell antigen receptor heterodimers in a lipid-linked form. , 1990, Science.
[31] R L Stanfield,et al. Antibody-antigen interactions: new structures and new conformational changes. , 1994, Current opinion in structural biology.
[32] J. Janin,et al. Principles of protein-protein recognition from structure to thermodynamics. , 1995, Biochimie.
[33] D. Margulies,et al. A three-domain T cell receptor is biologically active and specifically stains cell surface MHC/peptide complexes. , 1997, Journal of immunology.
[34] P. Doherty,et al. Effector CD4+ and CD8+ T‐cell mechanisms in the control of respiratory virus infections , 1997, Immunological reviews.
[35] J. Bell,et al. BirA enzyme: production and application in the study of membrane receptor-ligand interactions by site-specific biotinylation. , 1999, Analytical biochemistry.
[36] R. Karlsson,et al. Experimental design for kinetic analysis of protein-protein interactions with surface plasmon resonance biosensors. , 1997, Journal of immunological methods.
[37] B K Jakobsen,et al. T cell receptor and coreceptor CD8 alphaalpha bind peptide-MHC independently and with distinct kinetics. , 1999, Immunity.
[38] J. Bell,et al. Extensive conservation of alpha and beta chains of the human T-cell antigen receptor recognizing HLA-A2 and influenza A matrix peptide. , 1991, Proceedings of the National Academy of Sciences of the United States of America.
[39] Y. Chien,et al. T cell receptor interaction with peptide/major histocompatibility complex (MHC) and superantigen/MHC ligands is dominated by antigen , 1993, The Journal of experimental medicine.
[40] A. McMichael,et al. The epitopes of influenza nucleoprotein recognized by cytotoxic T lymphocytes can be defined with short synthetic peptides , 1986, Cell.
[41] D. Wiley,et al. HLA-A2-peptide complexes: refolding and crystallization of molecules expressed in Escherichia coli and complexed with single antigenic peptides. , 1992, Proceedings of the National Academy of Sciences of the United States of America.
[42] S. Jones,et al. Principles of protein-protein interactions. , 1996, Proceedings of the National Academy of Sciences of the United States of America.
[43] K. Garcia,et al. Alanine Scanning Mutagenesis of an αβ T Cell Receptor: Mapping the Energy of Antigen Recognition , 1998 .
[44] A. McMichael,et al. Cytotoxic T cell recognition of the influenza nucleoprotein and hemagglutinin expressed in transfected mouse L cells , 1984, Cell.
[45] D. M. Weir,et al. Handbook of experimental immunology , 1967 .
[46] P. Allen,et al. Structural basis for T cell recognition of altered peptide ligands: a single T cell receptor can productively recognize a large continuum of related ligands , 1996, The Journal of experimental medicine.
[47] J. Ladbury. Just add water! The effect of water on the specificity of protein-ligand binding sites and its potential application to drug design. , 1996, Chemistry & biology.
[48] Partho Ghosh,et al. Structure of the complex between human T-cell receptor, viral peptide and HLA-A2 , 1996, Nature.
[49] S. Nathenson,et al. Alterations in TCR-MHC contacts subsequent to cross-recognition of class I MHC and singly substituted peptide variants. , 1998, Journal of immunology.
[50] D. Moss,et al. Human cytotoxic T lymphocyte responses to Epstein-Barr virus infection. , 1997, Annual review of immunology.
[51] J. Bell,et al. Human HLA-A0201-restricted cytotoxic T lymphocyte recognition of influenza A is dominated by T cells bearing the V beta 17 gene segment , 1995, The Journal of experimental medicine.
[52] I. Wilson,et al. Antibody-antigen interactions , 1993 .