Pertussis Toxin Is Superior to TLR Ligands in Enhancing Pathogenic Autoimmunity, Targeted at a Neo-Self Antigen, by Triggering Robust Expansion of Th1 Cells and Their Cytokine Production1
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E. Wawrousek | I. Gery | D. Klinman | C. Egwuagu | G. Shi | B. Vistica | C. Fujimoto | C. Yu | C. Chan
[1] S. Akira,et al. Toll-like receptors and innate immunity , 2006, Journal of Molecular Medicine.
[2] R. Liblau,et al. Pertussis Toxin Reduces the Number of Splenic Foxp3+ Regulatory T Cells1 , 2006, The Journal of Immunology.
[3] Y. Iwakura,et al. The IL-23/IL-17 axis in inflammation. , 2006, The Journal of clinical investigation.
[4] J. Ortaldo,et al. Pertussis toxin as an adjuvant suppresses the number and function of CD4+CD25+ T regulatory cells , 2006, European journal of immunology.
[5] S. Su,et al. Essential Role of the MyD88 Pathway, but Nonessential Roles of TLRs 2, 4, and 9, in the Adjuvant Effect Promoting Th1-Mediated Autoimmunity , 2005, The Journal of Immunology.
[6] Bruce S. Thompson,et al. Peptide‐stimulated DO11.10 T cells divide well but accumulate poorly in the absence of TLR agonist treatment , 2005, European journal of immunology.
[7] M. V. von Herrath,et al. Infections and Autoimmunity—Good or Bad?1 , 2005, The Journal of Immunology.
[8] Wei Hu,et al. PTX cruiser: driving autoimmunity via TLR4. , 2005, Trends in immunology.
[9] B. Pulendran. Variegation of the Immune Response with Dendritic Cells and Pathogen Recognition Receptors1 , 2005, The Journal of Immunology.
[10] S. Akira,et al. Toll-like receptor engagement converts T-cell autoreactivity into overt autoimmune disease , 2005, Nature Medicine.
[11] P. Kubes,et al. TLR4 Contributes to Disease-Inducing Mechanisms Resulting in Central Nervous System Autoimmune Disease1 , 2004, The Journal of Immunology.
[12] E. Wawrousek,et al. A unique pattern of up‐ and down‐regulation of chemokine receptor CXCR3 on inflammation‐inducing Th1 cells , 2004, European journal of immunology.
[13] Shizuo Akira,et al. Toll-like receptor signalling , 2004, Nature Reviews Immunology.
[14] E. Raz,et al. Cutting Edge: Activation of Toll-Like Receptor 2 Induces a Th2 Immune Response and Promotes Experimental Asthma1 , 2004, The Journal of Immunology.
[15] Timothy K Starr,et al. Positive and negative selection of T cells. , 2003, Annual review of immunology.
[16] B. Pulendran,et al. Cutting Edge: Different Toll-Like Receptor Agonists Instruct Dendritic Cells to Induce Distinct Th Responses via Differential Modulation of Extracellular Signal-Regulated Kinase-Mitogen-Activated Protein Kinase and c-Fos 1 , 2003, The Journal of Immunology.
[17] P. Borrow,et al. Cell‐surface bound pertussis toxin induces polyclonal T cell responses with high levels of interferon‐γ in the absence of interleukin‐12 , 2003, European journal of immunology.
[18] E. Wawrousek,et al. T Cell Tolerance to a Neo-Self Antigen Expressed by Thymic Epithelial Cells: The Soluble Form Is More Effective Than the Membrane-Bound Form , 2003, The Journal of Immunology.
[19] Yue Sun,et al. Pertussis Toxin Enhances Th1 Responses by Stimulation of Dendritic Cells 1 , 2003, The Journal of Immunology.
[20] S. Su,et al. Pertussis toxin alters the innate and the adaptive immune responses in a pertussis-dependent model of autoimmunity , 2002, Journal of Neuroimmunology.
[21] I. Gery,et al. Suppressors of Cytokine Signaling Proteins Are Differentially Expressed in Th1 and Th2 Cells: Implications for Th Cell Lineage Commitment and Maintenance , 2002, The Journal of Immunology.
[22] E. Wawrousek,et al. Inflammatory Mediators in Uveitis: Differential Induction of Cytokines and Chemokines in Th1- Versus Th2-Mediated Ocular Inflammation , 2002, The Journal of Immunology.
[23] E. Wawrousek,et al. Induction of ocular inflammation by T-helper lymphocytes type 2. , 2002, Investigative ophthalmology & visual science.
[24] T. Forsthuber,et al. The enhanced antigen‐specific production of cytokines induced by pertussis toxin is due to clonal expansion of T cells and not to altered effector functions of long‐term memory cells , 2000, European journal of immunology.
[25] M. Siegelman,et al. The CD44-initiated pathway of T-cell extravasation uses VLA-4 but not LFA-1 for firm adhesion. , 2000, The Journal of clinical investigation.
[26] F. Sallusto,et al. Two subsets of memory T lymphocytes with distinct homing potentials and effector functions , 1999, Nature.
[27] P. Charukamnoetkanok,et al. Immunotolerance against a foreign antigen transgenically expressed in the lens. , 1998, Investigative ophthalmology & visual science.
[28] Chyung-Ru Wang,et al. Helper T cell differentiation is controlled by the cell cycle. , 1998, Immunity.
[29] P. Allen,et al. In vivo expression of a TCR antagonist: T cells escape central tolerance but are antagonized in the periphery. , 1998, Journal of immunology.
[30] R. Rappuoli,et al. Pertussis toxin potentiates Th1 and Th2 responses to co-injected antigen: adjuvant action is associated with enhanced regulatory cytokine production and expression of the co-stimulatory molecules B7-1, B7-2 and CD28. , 1998, International immunology.
[31] H. D. Liggitt,et al. Triggers of autoimmune disease in a murine TCR-transgenic model for multiple sclerosis. , 1997, Journal of immunology.
[32] D. Devine,et al. Autoreactive T cells in healthy individuals show tolerance in vitro with characteristics similar to but distinct from clonal anergy , 1995, European journal of immunology.
[33] M P Cooke,et al. Resting and anergic B cells are defective in CD28-dependent costimulation of naive CD4+ T cells , 1994, The Journal of experimental medicine.
[34] D. Torre,et al. Production and release of tumor necrosis factor alfa, interleukin-1B and interleukin-6 by human mononuclear leukocytes stimulated with pertussis toxin. , 1993, The new microbiologica.
[35] W. Sewell,et al. Enhancement of interleukin-4 production by pertussis toxin , 1993, Infection and immunity.
[36] M. Gefter,et al. Pertussis toxin prevents the induction of peripheral T cell anergy and enhances the T cell response to an encephalitogenic peptide of myelin basic protein. , 1991, Journal of Immunology.
[37] G. Chader,et al. Experimental autoimmune uveoretinitis in mice. Induction by a single eliciting event and dependence on quantitative parameters of immunization. , 1990, Journal of autoimmunity.
[38] I. Gery,et al. The effects of pertussis toxin on the induction and transfer of experimental autoimmune uveoretinitis. , 1986, Clinical immunology and immunopathology.
[39] R. Nussenblatt,et al. An association between susceptibility to experimental autoimmune uveitis and choroidal mast cell numbers. , 1984, Journal of immunology.
[40] D. Linthicum,et al. Acute experimental autoimmune encephalomyelitis in mice. I. Adjuvant action of Bordetella pertussis is due to vasoactive amine sensitization and increased vascular permeability of the central nervous system. , 1982, Cellular immunology.
[41] J. Frelinger,et al. Acute autoimmune encephalomyelitis in mice. II. Susceptibility is controlled by the combination of H-2 and histamine sensitization genes , 1982, The Journal of experimental medicine.
[42] R. Arnon,et al. Induction of experimental allergic encephalomyelitis in genetically resistant strains of mice , 1980, Nature.
[43] R. Kastelein,et al. Understanding the IL-23-IL-17 immune pathway. , 2006, Trends in immunology.
[44] C. Janeway,et al. Innate immune recognition. , 2002, Annual review of immunology.
[45] A. Abbas,et al. The enemy within: keeping self-reactive T cells at bay in the periphery , 2002, Nature Reviews Immunology.
[46] I. Mackay,et al. Elicitation of experimental allergic encephalomyelitis (EAE) in mice with the aid of pertussigen. , 1984, Cellular immunology.
[47] V. Kuchroo,et al. Activation of antigen-presenting cells by microbial products breaks self tolerance and induces autoimmune disease. , 2004, The Journal of clinical investigation.