A role for non-MHC genetic polymorphism in susceptibility to spontaneous autoimmunity.
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H. Mcdevitt | D. Lo | R. Liblau | S. Degermann | B. Scott | A. Caton | L. Ogata | L. Marconi | Roland S. Liblau | H. McDevitt | David Lo | Bernadette Scott | Sylvia Degermann
[1] A. Tobin,et al. Spontaneous loss of T-cell tolerance to glutamic acid decarboxylase in murine insulin-dependent diabetes , 1993, Nature.
[2] R. Tisch,et al. Immune response to glutamic acid decarboxylase correlates with insulitis in non-obese diabetic mice , 1993, Nature.
[3] C. Benoist,et al. Following a diabetogenic T cell from genesis through pathogenesis , 1993, Cell.
[4] A. Kelso,et al. Interleukin-4 but not gamma interferon production correlates with the severity of murine cutaneous leishmaniasis , 1993, Infection and immunity.
[5] J. Todd,et al. Polygenic control of autoimmune diabetes in nonobese diabetic mice , 1993, Nature Genetics.
[6] L. Glimcher,et al. Autoimmune diabetes can be induced in transgenic major histocompatibility complex class II-deficient mice , 1993, The Journal of experimental medicine.
[7] H. Mcdevitt,et al. Antigen‐presenting cells in adoptively transferred and spontaneous autoimmune diabetes , 1993, European journal of immunology.
[8] Xiaojian Huang,et al. Induction of type I diabetes by interferon-alpha in transgenic mice. , 1993, Science.
[9] C. Hsieh,et al. Development of TH1 CD4+ T cells through IL-12 produced by Listeria-induced macrophages. , 1993, Science.
[10] B. Torbett,et al. Patterns of cytokine gene expression by CD4+ T cells from young and old mice. , 1993, Journal of immunology.
[11] E. Rock,et al. Transfer of putative complementarity-determining region loops of T cell receptor V domains confers toxin reactivity but not peptide/MHC specificity. , 1993, Journal of Immunology.
[12] D. Mason,et al. Evidence that the T cell repertoire of normal rats contains cells with the potential to cause diabetes. Characterization of the CD4+ T cell subset that inhibits this autoimmune potential , 1993, The Journal of experimental medicine.
[13] L. Hood,et al. Transgenic mice that express a myelin basic protein-specific T cell receptor develop spontaneous autoimmunity , 1993, Cell.
[14] G. Schönrich,et al. Autoimmune diabetes as a consequence of locally produced interleukin-2 , 1992, Nature.
[15] Eric S. Lander,et al. Genetic dissection of autoimmune type I diabetes in the BB rat , 1992 .
[16] C. Hsieh,et al. Differential regulation of T helper phenotype development by interleukins 4 and 10 in an alpha beta T-cell-receptor transgenic system. , 1992, Proceedings of the National Academy of Sciences of the United States of America.
[17] L. Wicker,et al. Autoimmune syndromes in major histocompatibility complex (MHC) congenic strains of nonobese diabetic (NOD) mice. The NOD MHC is dominant for insulitis and cyclophosphamide-induced diabetes , 1992, The Journal of experimental medicine.
[18] R. Palmiter,et al. Peripheral tolerance to an islet cell‐specific hemagglutinin transgene affects both CD4+ and CD8+ T cells , 1992, European journal of immunology.
[19] J. Blackwell,et al. Altered course of visceral leishmaniasis in mice expressing transgenic I‐E molecules , 1992, European journal of immunology.
[20] M. Lipes,et al. Identification and cloning of a granule autoantigen (carboxypeptidase-H) associated with type I diabetes. , 1991, The Journal of clinical endocrinology and metabolism.
[21] M. Croft,et al. Helper T‐Cell Subsets: Phenotype, Function and the Role of Lymphokines in Regulating their Development , 1991, Immunological reviews.
[22] J. Todd,et al. Type 1 diabetes in mice is linked to the interleukin-1 receptor and Lsh/lty/Bcg genes on chromosome 1 , 1991, Nature.
[23] P. Marrack,et al. Altered antigen receptor signaling in anergic T cells from self-tolerant T-cell receptor beta-chain transgenic mice. , 1991, Proceedings of the National Academy of Sciences of the United States of America.
[24] Soumitra Ghosh,et al. Genetic analysis of autoimmune type 1 diabetes mellitus in mice , 1991, Nature.
[25] M. Nerenberg,et al. Virus infection triggers insulin-dependent diabetes mellitus in a transgenic model: Role of anti-self (virus) immune response , 1991, Cell.
[26] H. Pircher,et al. Ablation of “tolerance” and induction of diabetes by virus infection in viral antigen transgenic mice , 1991, Cell.
[27] G. Schönrich,et al. Down-regulation of T cell receptors on self-reactive T cells as a novel mechanism for extrathymic tolerance induction , 1991, Cell.
[28] B. Rocha,et al. Peripheral selection of the T cell repertoire. , 1991, Science.
[29] J. Sprent,et al. Extrathymic tolerance of mature T cells: Clonal elimination as a consequence of immunity , 1990, Cell.
[30] K. Haskins,et al. Acceleration of diabetes in young NOD mice with a CD4+ islet-specific T cell clone. , 1990, Science.
[31] S. Baekkeskov,et al. Identification of the 64K autoantigen in insulin-dependent diabetes as the GABA-synthesizing enzyme glutamic acid decarboxylase , 1990, Nature.
[32] K. Gilbert,et al. Th1 and Th2 clones differ in their response to a tolerogenic signal. , 1990, Journal of immunology.
[33] C. Fathman,et al. A subset of memory CD4+ helper T lymphocytes identified by expression of Pgp-1 , 1989, The Journal of experimental medicine.
[34] A. Weinberg,et al. Characterization of T helper 1 and 2 cell subsets in normal mice. Helper T cells responsible for IL-4 and IL-5 production are present as precursors that require priming before they develop into lymphokine-secreting cells. , 1988, Journal of immunology.
[35] N. Sarvetnick,et al. Insulin-dependent diabetes mellitus induced in transgenic mice by ectopic expression of class II MHC and interferon-gamma , 1988, Cell.
[36] L. Wicker,et al. Both the Lyt-2+ and L3T4+ T cell subsets are required for the transfer of diabetes in nonobese diabetic mice. , 1988, Journal of immunology.
[37] J. Todd,et al. HLA-DQβ gene contributes to susceptibility and resistance to insulin-dependent diabetes mellitus , 1987, Nature.
[38] C. Boitard,et al. Syngeneic transfer of autoimmune diabetes from diabetic NOD mice to healthy neonates. Requirement for both L3T4+ and Lyt-2+ T cells , 1987, The Journal of experimental medicine.
[39] D. Coleman,et al. Three recessive loci required for insulin-dependent diabetes in nonobese diabetic mice. , 1987, Science.
[40] L. Wicker,et al. Genetic control of diabetes and insulitis in the nonobese diabetic (NOD) mouse , 1987, The Journal of experimental medicine.
[41] P. Rabinovitch,et al. Heterogeneity among T cells in intracellular free calcium responses after mitogen stimulation with PHA or anti-CD3. Simultaneous use of indo-1 and immunofluorescence with flow cytometry. , 1986, Journal of immunology.
[42] M. Dorf,et al. The NOD mouse: recessive diabetogenic gene in the major histocompatibility complex. , 1986, Science.
[43] Y. Tochino,et al. Breeding of a non-obese, diabetic strain of mice. , 1980, Jikken dobutsu. Experimental animals.
[44] D. Lancki,et al. Differential regulation of murine T lymphocyte subsets. , 1993, Annual review of immunology.
[45] R. Coffman,et al. Regulation of immunity to parasites by T cells and T cell-derived cytokines. , 1992, Annual review of immunology.
[46] G. Eisenbarth,et al. Type-I diabetes: a chronic autoimmune disease of human, mouse, and rat. , 1990, Annual review of immunology.
[47] 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.
[48] R. Prehn,et al. Genetic susceptibility to post-thymectomy autoimmune diseases in mice , 1981, Immunogenetics.