Altered peptide ligand-induced partial T cell activation: molecular mechanisms and role in T cell biology.
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[1] J. Rothbard,et al. Specific T cell recognition of minimally homologous peptides: evidence for multiple endogenous ligands. , 1995, Immunity.
[2] A. Shaw,et al. Analysis of the interaction of ZAP-70 and syk protein-tyrosine kinases with the T-cell antigen receptor by plasmon resonance. , 1995, Proceedings of the National Academy of Sciences of the United States of America.
[3] A. Lanzavecchia,et al. Serial triggering of many T-cell receptors by a few peptideMHC complexes , 1995, Nature.
[4] K. Karjalainen,et al. Signals through T cell receptor-zeta chain alone are insufficient to prime resting T lymphocytes , 1995, The Journal of experimental medicine.
[5] F. Alt,et al. CD2ϵ and CD3ξ cytoplasmic domains can independently generate signals for T cell development and function , 1995 .
[6] A. Sette,et al. Modulation of cytokine patterns of human autoreactive T cell clones by a single amino acid substitution of their peptide ligand. , 1995, Immunity.
[7] 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.
[8] P. Ohashi,et al. Immunological function of a defined T-cell population tolerized to low-affinity self antigens , 1995, Nature.
[9] M. Peters. Natural variants of cytotoxic epitopes are T-cell receptor antagonists for antiviral cytotoxic T cells , 1995 .
[10] P. Allen,et al. Modulation of T cell development by an endogenous altered peptide ligand , 1995, The Journal of experimental medicine.
[11] L. Samelson,et al. Zeta phosphorylation without ZAP-70 activation induced by TCR antagonists or partial agonists , 1995, Science.
[12] R. Aebersold,et al. ZAP-70 binding specificity to T cell receptor tyrosine-based activation motifs: the tandem SH2 domains of ZAP-70 bind distinct tyrosine-based activation motifs with varying affinity , 1995, The Journal of experimental medicine.
[13] M. Bevan,et al. T cell receptor antagonists and partial agonists. , 1995, Immunity.
[14] M. Davis,et al. Kinetics of T-cell receptor binding to peptide/I-Ek complexes: correlation of the dissociation rate with T-cell responsiveness. , 1994, Proceedings of the National Academy of Sciences of the United States of America.
[15] Paul M. Allen,et al. Partial T cell signaling: Altered phospho-ζ and lack of zap70 recruitment in APL-induced T cell anergy , 1994, Cell.
[16] A. Grinberg,et al. Role of TCR zeta chain in T cell development and selection. , 1994, Science.
[17] P. Allen,et al. Th2 cell clonal anergy as a consequence of partial activation , 1994, The Journal of experimental medicine.
[18] E. Lacy,et al. A block in both early T lymphocyte and natural killer cell development in transgenic mice with high-copy numbers of the human CD3E gene. , 1994, Proceedings of the National Academy of Sciences of the United States of America.
[19] H. Macdonald,et al. Double‐negative thymocyte subsets in CD3′ chain‐deficient mice: Absence of HSA+CD44−CD25− cells , 1994, European journal of immunology.
[20] M. Bevan,et al. Specificity and flexibility in thymic selection , 1994, Nature.
[21] Peter C. Doherty,et al. Virus-specific CD8+ T-cell memory determined by clonal burst size , 1994, Nature.
[22] R. Ahmed,et al. Cytotoxic T-cell memory without antigen , 1994, Nature.
[23] A. Sette,et al. Natural variants of cytotoxic epitopes are T-cell receptor antagonists for antiviral cytotoxic T cells , 1994, Nature.
[24] Sarah Rowland-Jones,et al. Cytotoxic T-cell activity antagonized by naturally occurring HIV-1 Gag variants , 1994, Nature.
[25] M. Peter,et al. Association of phosphatidylinositol 3-kinase with a specific sequence of the T cell receptor zeta chain is dependent on T cell activation. , 1994, The Journal of biological chemistry.
[26] A. Singer,et al. Differential effects of zeta and eta transgenes on early alpha/beta T cell development , 1994, The Journal of experimental medicine.
[27] H. Grey,et al. Negative selection of CD4+ CD8+ thymocytes by T-cell receptor peptide antagonists. , 1994, Proceedings of the National Academy of Sciences of the United States of America.
[28] O. Acuto,et al. p56lck interacts via its src homology 2 domain with the ZAP-70 kinase , 1994, The Journal of experimental medicine.
[29] P. Ohashi,et al. Positive and negative thymocyte selection induced by different concentrations of a single peptide. , 1994, Science.
[30] P. Allen,et al. Antagonism of superantigen-stimulated helper T-cell clones and hybridomas by altered peptide ligand. , 1994, Proceedings of the National Academy of Sciences of the United States of America.
[31] S. Tonegawa,et al. Evidence for a differential avidity model of T cell selection in the thymus , 1994, Cell.
[32] P. Allen. Peptides in positive and negative selection: A delicate balance , 1994, Cell.
[33] H. Boehmer. Positive selection of lymphocytes , 1994, Cell.
[34] J. Sprent. T and B memory cells , 1994, Cell.
[35] Dan R. Littman,et al. Signal transduction by lymphocyte antigen receptors , 1994, Cell.
[36] G. J. V. Nossal,et al. Negative selection of lymphocytes , 1994, Cell.
[37] Kristin A. Hogquist,et al. T cell receptor antagonist peptides induce positive selection , 1994, Cell.
[38] A. Weiss,et al. The role of protein tyrosine kinases and protein tyrosine phosphatases in T cell antigen receptor signal transduction. , 1994, Annual review of immunology.
[39] H. Weiner,et al. Epitopes of myelin basic protein that trigger TGF-beta release after oral tolerization are distinct from encephalitogenic epitopes and mediate epitope-driven bystander suppression. , 1993, Journal of immunology.
[40] P. Allen,et al. Tickling the TCR: selective T-cell functions stimulated by altered peptide ligands. , 1993, Immunology today.
[41] K. Rajewsky,et al. Developmental and functional impairment of T cells in mice lacking CD3 zeta chains. , 1993, The EMBO journal.
[42] C. Terhorst,et al. Reconstitution of T cell receptor zeta-mediated calcium mobilization in nonlymphoid cells. , 1993, Science.
[43] A. Singer,et al. T cell development in mice that lack the zeta chain of the T cell antigen receptor complex. , 1993, Science.
[44] T. Pawson,et al. The 64-kDa protein that associates with the platelet-derived growth factor receptor beta subunit via Tyr-1009 is the SH2-containing phosphotyrosine phosphatase Syp. , 1993, Proceedings of the National Academy of Sciences of the United States of America.
[45] M. Bevan,et al. Clone-specific T cell receptor antagonists of major histocompatibility complex class I-restricted cytotoxic T cells , 1993, The Journal of experimental medicine.
[46] J. Sidney,et al. T cell receptor antagonism mediated by interaction between T cell receptor junctional residues and peptide antigen analogues. , 1993, Journal of immunology.
[47] P. Allen,et al. Induction of T-cell anergy by altered T-cell-receptor ligand on live antigen-presenting cells , 1993, Nature.
[48] A. Weiss. T cell antigen receptor signal transduction: A tale of tails and cytoplasmic protein-tyrosine kinases , 1993, Cell.
[49] P. Allen,et al. Separation of T helper 1 clone cytolysis from proliferation and lymphokine production using analog peptides. , 1993, Journal of immunology.
[50] H. Grey,et al. Effect of T-cell receptor antagonism on interaction between T cells and antigen-presenting cells and on T-cell signaling events. , 1993, Proceedings of the National Academy of Sciences of the United States of America.
[51] A. Weiss,et al. Functional characterization of a signal transducing motif present in the T cell antigen receptor zeta chain , 1993, The Journal of experimental medicine.
[52] R. Germain,et al. Peptide-major histocompatibility complex class II complexes with mixed agonist/antagonist properties provide evidence for ligand-related differences in T cell receptor-dependent intracellular signaling , 1993, The Journal of experimental medicine.
[53] A. Kazlauskas,et al. Tyrosines 1021 and 1009 are phosphorylation sites in the carboxy terminus of the platelet-derived growth factor receptor beta subunit and are required for binding of phospholipase C gamma and a 64-kilodalton protein, respectively , 1993, Molecular and cellular biology.
[54] R. Klausner,et al. Tyrosine kinases and tyrosine-based activation motifs. Current research on activation via the T cell antigen receptor. , 1992, The Journal of biological chemistry.
[55] A. Kong,et al. p59fyn tyrosine kinase associates with multiple T-cell receptor subunits through its unique amino-terminal domain. , 1992, Molecular and cellular biology.
[56] A. Kazlauskas,et al. The B cell antigen receptor complex: association of Ig-alpha and Ig-beta with distinct cytoplasmic effectors. , 1992, Science.
[57] J. Ashwell,et al. Mutagenesis of T cell antigen receptor zeta chain tyrosine residues. Effects on tyrosine phosphorylation and lymphokine production. , 1992, The Journal of biological chemistry.
[58] Jonathan A. Cooper,et al. GTPase-activating protein and phosphatidylinositol 3-kinase bind to distinct regions of the platelet-derived growth factor receptor beta subunit , 1992, Molecular and cellular biology.
[59] H. Grey,et al. Antigen analog-major histocompatibility complexes act as antagonists of the T cell receptor , 1992, Cell.
[60] E. Reinherz,et al. Phosphorylation of multiple CD3 zeta tyrosine residues leads to formation of pp21 in vitro and in vivo. Structural changes upon T cell receptor stimulation. , 1992, The Journal of biological chemistry.
[61] C. Janeway,et al. Physical association of CD4 with the T cell receptor. , 1992, Journal of immunology.
[62] S. Buus,et al. Complete dissection of the Hb(64-76) determinant using T helper 1, T helper 2 clones, and T cell hybridomas. , 1992, Journal of immunology.
[63] B. Malissen,et al. The T cell receptor/CD3 complex is composed of at least two autonomous transduction modules , 1992, Cell.
[64] R. Klausner,et al. Activation of T cells by a tyrosine kinase activation domain in the cytoplasmic tail of CD3 epsilon. , 1992, Science.
[65] M. Davis,et al. Molecular components of T-cell recognition. , 1992, Annual review of immunology.
[66] E. Rothenberg. The development of functionally responsive T cells. , 1992, Advances in immunology.
[67] M. Sporn,et al. Suppressor T cells generated by oral tolerization to myelin basic protein suppress both in vitro and in vivo immune responses by the release of transforming growth factor beta after antigen-specific triggering. , 1992, Proceedings of the National Academy of Sciences of the United States of America.
[68] M. Jenkins,et al. Clonal anergy is induced in vitro by T cell receptor occupancy in the absence of proliferation. , 1991, Journal of immunology.
[69] P. Allen,et al. Separation of IL-4 production from Th cell proliferation by an altered T cell receptor ligand. , 1991, Science.
[70] P. Albert,et al. Prevention and treatment of chronic relapsing experimental allergic encephalomyelitis by transforming growth factor-beta 1. , 1991, Journal of immunology.
[71] R. Klausner,et al. T cell antigen receptor activation pathways: The tyrosine kinase connection , 1991, Cell.
[72] R. Klausner,et al. Association of the fyn protein-tyrosine kinase with the T-cell antigen receptor. , 1990, Proceedings of the National Academy of Sciences of the United States of America.
[73] M. Reth. Antigen receptor tail clue , 1989, Nature.
[74] R. Schwartz,et al. Clonal expansion versus functional clonal inactivation: a costimulatory signalling pathway determines the outcome of T cell antigen receptor occupancy. , 1989, Annual review of immunology.
[75] C. Janeway,et al. Cross-linking and conformational change in T-cell receptors: role in activation and in repertoire selection. , 1989, Cold Spring Harbor symposia on quantitative biology.
[76] P. Allen,et al. Direct evidence for functional self-protein/Ia-molecule complexes in vivo. , 1988, Proceedings of the National Academy of Sciences of the United States of America.
[77] R. Schwartz,et al. Stimulation of normal inducer T cell clones with antigen presented by purified Ia molecules in planar lipid membranes: specific induction of a long-lived state of proliferative nonresponsiveness. , 1987, Journal of immunology.
[78] R. Schwartz,et al. T‐Cell Unresponsiveness in vivo and in vitro: Fine Specificity of Induction and Molecular Characterization of the Unresponsive State , 1987, Immunological reviews.
[79] R. Schwartz,et al. Antigen presentation by chemically modified splenocytes induces antigen- specific T cell unresponsiveness in vitro and in vivo , 1987, The Journal of experimental medicine.
[80] Alessandro Sette,et al. Structural characteristics of an antigen required for its interaction with Ia and recognition by T cells , 1987, Nature.
[81] A. McMichael,et al. The epitopes of influenza nucleoprotein recognized by cytotoxic T lymphocytes can be defined with short synthetic peptides , 1986, Cell.
[82] E. Unanue,et al. Binding of immunogenic peptides to Ia histocompatibility molecules , 1985, Nature.