The nature of molecular recognition by T cells
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P. Anton van der Merwe | Edward J. Evans | Lars Fugger | Simon J. Davis | L. Fugger | P. A. van der Merwe | P. Merwe | S. Ikemizu | Talitha R. Bakker | Shinji Ikemizu | E. J. Evans | T. Bakker | S. Davis | S. J. Davis
[1] Ellis L. Reinherz,et al. T Cell Receptor Binding to a pMHCII Ligand Is Kinetically Distinct from and Independent of CD4* , 2001, The Journal of Biological Chemistry.
[2] B. Seed,et al. Molecular cloning of the CD2 antigen, the T-cell erythrocyte receptor, by a rapid immunoselection procedure. , 1987, Proceedings of the National Academy of Sciences of the United States of America.
[3] Ash A. Alizadeh,et al. Genomic expression programs and the integration of the CD28 costimulatory signal in T cell activation , 2002, Proceedings of the National Academy of Sciences of the United States of America.
[4] 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.
[5] T. Fahmy,et al. Increased TCR avidity after T cell activation: a mechanism for sensing low-density antigen. , 2001, Immunity.
[6] I. Campbell,et al. Structure of domain 1 of rat T lymphocyte CD2 antigen , 1991, Nature.
[7] S. Davis,et al. The Immunological Synapse--a Multitasking System , 2002, Science.
[8] Andrea Iaboni,et al. The immunological synapse and CD28-CD80 interactions , 2001, Nature Immunology.
[9] S. Almo,et al. Structural mechanisms of costimulation , 2002, Nature Immunology.
[10] Frits Koning,et al. T Cell Responses Modulated Through Interaction Between CD8αα and the Nonclassical MHC Class I Molecule, TL , 2001, Science.
[11] P. Anton van der Merwe,et al. Topology of the CD2–CD48 cell-adhesion molecule complex: implications for antigen recognition by T cells , 1995, Current Biology.
[12] A. Smolyar,et al. Structural Basis of CD8 Coreceptor Function Revealed by Crystallographic Analysis of a Murine CD8αα Ectodomain Fragment in Complex with H-2Kb , 1998 .
[13] Jia-huai Wang,et al. Structural specializations of immunoglobulin superfamily members for adhesion to integrins and viruses , 1998, Immunological reviews.
[14] J. Altman,et al. CD8 binding to MHC class I molecules is influenced by T cell maturation and glycosylation. , 2001, Immunity.
[15] E. Reinherz,et al. Molecular dissection of the CD2-CD58 counter-receptor interface identifies CD2 Tyr86 and CD58 Lys34 residues as the functional "hot spot". , 2001, Journal of molecular biology.
[16] E. Reinherz,et al. Developmentally Regulated Glycosylation of the CD8αβ Coreceptor Stalk Modulates Ligand Binding , 2001, Cell.
[17] P. A. van der Merwe,et al. Immunology. The immunological synapse--a multitasking system. , 2002, Science.
[18] W. Hendrickson,et al. Dimeric association and segmental variability in the structure of human CD4 , 1997, Nature.
[19] Kristin A. Hogquist,et al. Sweet 'n' sour: the impact of differential glycosylation on T cell responses , 2002, Nature Immunology.
[20] G. Galfré,et al. Analysis of cell surfaces by xenogeneic myeloma-hybrid antibodies: Differentiation antigens of rat lymphocytes , 1977, Cell.
[21] A. Fedorov,et al. Structural basis for co-stimulation by the human CTLA-4/B7-2 complex , 2001, Nature.
[22] J. Ahnn,et al. Analysis of the , 2000 .
[23] R. Dwek,et al. Glycosylation and the immune system. , 2001, Science.
[24] M. Davis,et al. A receptor/cytoskeletal movement triggered by costimulation during T cell activation. , 1998, Science.
[25] Gerhard Wagner,et al. Structure, specificity and CDR mobility of a class II restricted single-chain T-cell receptor , 1999, Nature Structural Biology.
[26] D. Stuart,et al. Crystal structure of the CD2-binding domain of CD58 (lymphocyte function-associated antigen 3) at 1.8-A resolution. , 1999, Proceedings of the National Academy of Sciences of the United States of America.
[27] Bernard Malissen,et al. A T cell receptor CDR3beta loop undergoes conformational changes of unprecedented magnitude upon binding to a peptide/MHC class I complex. , 2002, Immunity.
[28] Michael Loran Dustin,et al. Low Affinity Interaction of Human or Rat T Cell Adhesion Molecule CD2 with Its Ligand Aligns Adhering Membranes to Achieve High Physiological Affinity* , 1997, The Journal of Biological Chemistry.
[29] D I Stuart,et al. Structure and dimerization of a soluble form of B7-1. , 2000, Immunity.
[30] H. Güntherodt,et al. Unbinding forces of single antibody-antigen complexes correlate with their thermal dissociation rates. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[31] E. Unanue,et al. TCR-mediated adhesion of T cell hybridomas to planar bilayers containing purified MHC class II/peptide complexes and receptor shedding during detachment. , 1996, Journal of immunology.
[32] J. Strominger,et al. Interaction between CD4 and class II MHC molecules mediates cell adhesion , 1987, Nature.
[33] W. Hahn,et al. A distinct cytoplasmic domain of CD2 regulates ligand avidity and T-cell responsiveness to antigen. , 1992, Proceedings of the National Academy of Sciences of the United States of America.
[34] A. Barclay,et al. High level expression in Chinese hamster ovary cells of soluble forms of CD4 T lymphocyte glycoprotein including glycosylation variants. , 1990, The Journal of biological chemistry.
[35] D. Stuart,et al. Crystal structure of the complex between human CD8αα and HLA-A2 , 1997, Nature.
[36] David I. Stuart,et al. Crystal structure at 2.8 Å resolution of a soluble form of the cell adhesion molecule CD2 , 1992, Nature.
[37] D. Leckband,et al. Measuring the forces that control protein interactions. , 2000, Annual review of biophysics and biomolecular structure.
[38] B K Jakobsen,et al. TCR binding to peptide-MHC stabilizes a flexible recognition interface. , 1999, Immunity.
[39] Michael Loran Dustin,et al. Cytoskeletal polarization and redistribution of cell-surface molecules during T cell antigen recognition. , 2000, Seminars in immunology.
[40] Ian A Wilson,et al. Structural and thermodynamic correlates of T cell signaling. , 2002, Annual review of biophysics and biomolecular structure.
[41] A. Barclay,et al. Transient intercellular adhesion: the importance of weak protein-protein interactions. , 1994, Trends in biochemical sciences.
[42] Balbino Alarcón,et al. Recruitment of Nck by CD3ϵ Reveals a Ligand-Induced Conformational Change Essential for T Cell Receptor Signaling and Synapse Formation , 2002, Cell.
[43] S. Davis,et al. The role of charged residues mediating low affinity protein-protein recognition at the cell surface by CD2. , 1998, Proceedings of the National Academy of Sciences of the United States of America.
[44] Mark M. Davis,et al. Direct observation of ligand recognition by T cells , 2002, Nature.
[45] A. Weiss,et al. Negative regulation of CD45 by differential homodimerization of the alternatively spliced isoforms , 2002, Nature Immunology.
[46] Alan F. Williams. Immunology: The immunoglobulin superfamily takes shape , 1984, Nature.
[47] Z Reich,et al. Thermodynamics of T cell receptor binding to peptide-MHC: evidence for a general mechanism of molecular scanning. , 1999, Proceedings of the National Academy of Sciences of the United States of America.
[48] C. Janeway. The T cell receptor as a multicomponent signalling machine: CD4/CD8 coreceptors and CD45 in T cell activation. , 1992, Annual review of immunology.
[49] S. Ikemizu,et al. CD2 and the nature of protein interactions mediating cell‐cell recognition , 1998, Immunological reviews.
[50] Andrea Iaboni,et al. The interaction properties of costimulatory molecules revisited. , 2002, Immunity.
[51] Thilo Stehle,et al. Crystal Structure of the Extracellular Segment of Integrin αVβ3 , 2001, Science.
[52] Yuzhe Xing,et al. Small Molecule Ligands Define a Binding Site on the Immune Regulatory Protein B7.1* , 2002, The Journal of Biological Chemistry.
[53] Richard O Hynes,et al. Integrins Bidirectional, Allosteric Signaling Machines , 2002, Cell.
[54] M. Jackson,et al. TCR-Mediated internalization of peptide-MHC complexes acquired by T cells. , 1999, Science.
[55] P. Merwe. Leukocyte adhesion: High-speed cells with ABS , 1999, Current Biology.
[56] M. Bachmann,et al. Cd2 Sets Quantitative Thresholds in T Cell Activation , 1999, The Journal of experimental medicine.
[57] Michael L. Dustin,et al. T-cell receptor cross-linking transiently stimulates adhesiveness through LFA-1 , 1989, Nature.
[58] L. Mosyak,et al. Erratum: Crystal structure of the B7-1/CTLA-4 complex that inhibits human immune responses (Nature (2001) 410 (608-611)) , 2001 .
[59] A. Lanzavecchia,et al. T lymphocyte costimulation mediated by reorganization of membrane microdomains. , 1999, Science.
[60] Mark M. Davis,et al. LIGAND RECOGNITION BY T CELL RECEPTORS , 1998 .
[61] L R Pease,et al. Structural basis of plasticity in T cell receptor recognition of a self peptide-MHC antigen. , 1998, Science.
[62] A. Barclay,et al. Affinity and kinetic analysis of the interaction of the cell adhesion molecules rat CD2 and CD48. , 1993, The EMBO journal.
[63] Michael Loran Dustin,et al. Visualization of CD2 interaction with LFA-3 and determination of the two-dimensional dissociation constant for adhesion receptors in a contact area , 1996, The Journal of cell biology.
[64] Simon J Davis,et al. Molecular interactions mediating T cell antigen recognition. , 2003, Annual review of immunology.
[65] R. Locksley,et al. Helper T cells without CD4: control of leishmaniasis in CD4-deficient mice. , 1993, Science.
[66] S. Davis,et al. The structure and ligand interactions of CD2: implications for T-cell function. , 1996, Immunology today.
[67] E. Reinherz,et al. Expression, Purification, and Functional Analysis of Murine Ectodomain Fragments of CD8αα and CD8αβ Dimers* , 1999, The Journal of Biological Chemistry.
[68] H. Wolfson,et al. Shape complementarity at protein–protein interfaces , 1994, Biopolymers.
[69] D. Wiley,et al. T Cell Receptor–MHC Interactions up Close , 2001, Cell.
[70] P. Parham,et al. Cell-cell adhesion mediated by CD8 and MHC class I molecules , 1988, Nature.
[71] Ellis L. Reinherz,et al. Crystal structure of the human CD4 N-terminal two-domain fragment complexed to a class II MHC molecule , 2001, Proceedings of the National Academy of Sciences of the United States of America.
[72] Michael Loran Dustin,et al. Making the T cell receptor go the distance: a topological view of T cell activation. , 1997, Immunity.
[73] B M Baker,et al. Four A6-TCR/peptide/HLA-A2 structures that generate very different T cell signals are nearly identical. , 1999, Immunity.
[74] B K Jakobsen,et al. T cell receptor and coreceptor CD8 alphaalpha bind peptide-MHC independently and with distinct kinetics. , 1999, Immunity.
[75] D. Margulies,et al. Lack of strict correlation of functional sensitization with the apparent affinity of MHC/peptide complexes for the TCR. , 1995, Journal of immunology.
[76] D. Leckband,et al. Direct molecular force measurements of multiple adhesive interactions between cadherin ectodomains. , 1999, Proceedings of the National Academy of Sciences of the United States of America.
[77] T. Hanke,et al. CD28‐mediated induction of proliferation in resting T cells in vitro and in vivo without engagement of the T cell receptor: Evidence for functionally distinct forms of CD28 , 1997, European journal of immunology.
[78] George F. Gao,et al. Molecular coordination of αβ T-cell receptors and coreceptors CD8 and CD4 in their recognition of peptide-MHC ligands , 2002 .
[79] D. Mason,et al. A very high level of crossreactivity is an essential feature of the T-cell receptor. , 1998, Immunology today.
[80] Z Reich,et al. Ligand recognition by alpha beta T cell receptors. , 1998, Annual review of immunology.
[81] Gerhard Wagner,et al. Structure of a Heterophilic Adhesion Complex between the Human CD2 and CD58 (LFA-3) Counterreceptors , 1999, Cell.
[82] Mark M. Davis,et al. Two-step binding mechanism for T-cell receptor recognition of peptide–MHC , 2002, Nature.
[83] Direct measurements of heterotypic adhesion between the cell surface proteins CD2 and CD48. , 2002, Biochemistry.
[84] Yan Zhang,et al. Crystal structure of the B7-1/CTLA-4 complex that inhibits human immune responses , 2001, Nature.
[85] O. Acuto,et al. Syk and ZAP-70 mediate recruitment of p56lck/CD4 to the activated T cell receptor/CD3/zeta complex , 1995, The Journal of experimental medicine.
[86] Takashi Saito,et al. Dependence of T Cell Antigen Recognition on the Dimensions of an Accessory Receptor–Ligand Complex , 1999, The Journal of experimental medicine.