Th17 Cells and autoimmune encephalomyelitis (EAE/MS).
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[1] D. Hommes,et al. Stimulation of the intracellular bacterial sensor NOD2 programs dendritic cells to promote interleukin-17 production in human memory T cells. , 2007, Immunity.
[2] Nathalie Arbour,et al. Human TH17 lymphocytes promote blood-brain barrier disruption and central nervous system inflammation , 2007, Nature Medicine.
[3] M. Lazar,et al. Activation of retinoic acid receptor‐α favours regulatory T cell induction at the expense of IL‐17‐secreting T helper cell differentiation , 2007, European journal of immunology.
[4] T. Mak,et al. The development of inflammatory TH-17 cells requires interferon-regulatory factor 4 , 2007, Nature Immunology.
[5] Kathleen M. Smith,et al. Development, cytokine profile and function of human interleukin 17–producing helper T cells , 2007, Nature Immunology.
[6] F. Sallusto,et al. Interleukins 1β and 6 but not transforming growth factor-β are essential for the differentiation of interleukin 17–producing human T helper cells , 2007, Nature Immunology.
[7] W. Zou,et al. Cutting Edge: Opposite Effects of IL-1 and IL-2 on the Regulation of IL-17+ T Cell Pool IL-1 Subverts IL-2-Mediated Suppression1 , 2007, The Journal of Immunology.
[8] Terry B. Strom,et al. IL-21 initiates an alternative pathway to induce proinflammatory TH17 cells , 2007, Nature.
[9] A. D. Panopoulos,et al. Essential autocrine regulation by IL-21 in the generation of inflammatory T cells , 2007, Nature.
[10] Hilde Cheroutre,et al. Reciprocal TH17 and Regulatory T Cell Differentiation Mediated by Retinoic Acid , 2007, Science.
[11] T. Yamamura,et al. Cutting Edge: Human Th17 Cells Are Identified as Bearing CCR2+CCR5− Phenotype1 , 2007, The Journal of Immunology.
[12] D. Jarrossay,et al. Surface phenotype and antigenic specificity of human interleukin 17–producing T helper memory cells , 2007, Nature Immunology.
[13] Chen Dong,et al. STAT3 Regulates Cytokine-mediated Generation of Inflammatory Helper T Cells* , 2007, Journal of Biological Chemistry.
[14] L. Hennighausen,et al. Interleukin-2 signaling via STAT5 constrains T helper 17 cell generation. , 2007, Immunity.
[15] M. Lebwohl,et al. A human interleukin-12/23 monoclonal antibody for the treatment of psoriasis. , 2007, The New England journal of medicine.
[16] P. Valdez,et al. Interleukin-22, a TH17 cytokine, mediates IL-23-induced dermal inflammation and acanthosis , 2007, Nature.
[17] Judy H. Cho,et al. A Genome-Wide Association Study Identifies IL23R as an Inflammatory Bowel Disease Gene , 2006, Science.
[18] A. Sher,et al. IL-23 plays a key role in Helicobacter hepaticus–induced T cell–dependent colitis , 2006, The Journal of experimental medicine.
[19] F. Powrie,et al. Interleukin-23 drives innate and T cell–mediated intestinal inflammation , 2006, The Journal of experimental medicine.
[20] R. J. Hocking,et al. Signals mediated by transforming growth factor-β initiate autoimmune encephalomyelitis, but chronic inflammation is needed to sustain disease , 2006, Nature Immunology.
[21] D. Littman,et al. The Orphan Nuclear Receptor RORγt Directs the Differentiation Program of Proinflammatory IL-17+ T Helper Cells , 2006, Cell.
[22] L. Hennighausen,et al. Interleukin 27 negatively regulates the development of interleukin 17–producing T helper cells during chronic inflammation of the central nervous system , 2006, Nature Immunology.
[23] D. Danilenko,et al. Interleukin 27 limits autoimmune encephalomyelitis by suppressing the development of interleukin 17–producing T cells , 2006, Nature Immunology.
[24] H. Weiner,et al. IL-23 Is Increased in Dendritic Cells in Multiple Sclerosis and Down-Regulation of IL-23 by Antisense Oligos Increases Dendritic Cell IL-10 Production , 2006, The Journal of Immunology.
[25] L. Harrington,et al. Expanding the effector CD4 T-cell repertoire: the Th17 lineage. , 2006, Current opinion in immunology.
[26] H. Weiner,et al. Reciprocal developmental pathways for the generation of pathogenic effector TH17 and regulatory T cells , 2006, Nature.
[27] R. D. Hatton,et al. Transforming growth factor-β induces development of the TH17 lineage , 2006, Nature.
[28] T. Mcclanahan,et al. IL-23 is essential for T cell-mediated colitis and promotes inflammation via IL-17 and IL-6. , 2006, The Journal of clinical investigation.
[29] F. Powrie,et al. Differential activity of IL-12 and IL-23 in mucosal and systemic innate immune pathology. , 2006, Immunity.
[30] R. J. Hocking,et al. TGFbeta in the context of an inflammatory cytokine milieu supports de novo differentiation of IL-17-producing T cells. , 2006, Immunity.
[31] R. Kastelein,et al. Understanding the IL-23-IL-17 immune pathway. , 2006, Trends in immunology.
[32] Matthias Mack,et al. Modulating CCR2 and CCL2 at the blood-brain barrier: relevance for multiple sclerosis pathogenesis. , 2006, Brain : a journal of neurology.
[33] Ying Wang,et al. A distinct lineage of CD4 T cells regulates tissue inflammation by producing interleukin 17 , 2005, Nature Immunology.
[34] R. D. Hatton,et al. Interleukin 17–producing CD4+ effector T cells develop via a lineage distinct from the T helper type 1 and 2 lineages , 2005, Nature Immunology.
[35] J. Kolls,et al. Role of IL-17A, IL-17F, and the IL-17 Receptor in Regulating Growth-Related Oncogene-α and Granulocyte Colony-Stimulating Factor in Bronchial Epithelium: Implications for Airway Inflammation in Cystic Fibrosis 1 , 2005, The Journal of Immunology.
[36] C. Hunter. New IL-12-family members: IL-23 and IL-27, cytokines with divergent functions , 2005, Nature Reviews Immunology.
[37] F. Mihara,et al. Intrathecal activation of the IL-17/IL-8 axis in opticospinal multiple sclerosis. , 2005, Brain : a journal of neurology.
[38] Roland Martin,et al. Immunology of multiple sclerosis. , 2005, Annual review of immunology.
[39] T. Mcclanahan,et al. IL-23 drives a pathogenic T cell population that induces autoimmune inflammation , 2005, The Journal of experimental medicine.
[40] A. Lindén,et al. Interleukin-17 family members and inflammation. , 2004, Immunity.
[41] M. Dhodapkar,et al. Increased Expression of Interleukin 23 p19 and p40 in Lesional Skin of Patients with Psoriasis Vulgaris , 2004, The Journal of experimental medicine.
[42] T. Mcclanahan,et al. Divergent Pro- and Antiinflammatory Roles for IL-23 and IL-12 in Joint Autoimmune Inflammation , 2003, The Journal of experimental medicine.
[43] R. Kastelein,et al. Interleukin-23 rather than interleukin-12 is the critical cytokine for autoimmune inflammation of the brain , 2003, Nature.
[44] B. Becher,et al. Experimental autoimmune encephalitis and inflammation in the absence of interleukin-12. , 2002, The Journal of clinical investigation.
[45] Jorge R. Oksenberg,et al. Gene-microarray analysis of multiple sclerosis lesions yields new targets validated in autoimmune encephalomyelitis , 2002, Nature Medicine.
[46] D. Galimberti,et al. IP-10 and MCP-1 levels in CSF and serum from multiple sclerosis patients with different clinical subtypes of the disease , 2002, Journal of the Neurological Sciences.
[47] S. Szabo,et al. Distinct Effects of T-bet in TH1 Lineage Commitment and IFN-γ Production in CD4 and CD8 T Cells , 2002, Science.
[48] R. Bergamaschi,et al. Serum and CSF levels of MCP-1 and IP-10 in multiple sclerosis patients with acute and stable disease and undergoing immunomodulatory therapies , 2001, Journal of Neuroimmunology.
[49] B. Rollins,et al. Absence of Monocyte Chemoattractant Protein 1 in Mice Leads to Decreased Local Macrophage Recruitment and Antigen-Specific T Helper Cell Type 1 Immune Response in Experimental Autoimmune Encephalomyelitis , 2001, The Journal of experimental medicine.
[50] K. Sugamura,et al. Prostaglandin D2 Selectively Induces Chemotaxis in T Helper Type 2 Cells, Eosinophils, and Basophils via Seven-Transmembrane Receptor Crth2 , 2001, The Journal of experimental medicine.
[51] H. Weiner,et al. Resistance to Experimental Autoimmune Encephalomyelitis in Mice Lacking the Cc Chemokine Receptor (Ccr2) , 2000, The Journal of experimental medicine.
[52] W. Kuziel,et al. Cc Chemokine Receptor 2 Is Critical for Induction of Experimental Autoimmune Encephalomyelitis , 2000, The Journal of experimental medicine.
[53] Laurie H Glimcher,et al. A Novel Transcription Factor, T-bet, Directs Th1 Lineage Commitment , 2000, Cell.
[54] C. Mackay,et al. The role of chemokine receptors in primary, effector, and memory immune responses. , 2000, Annual review of immunology.
[55] J. Lötvall,et al. Neutrophil recruitment by human IL-17 via C-X-C chemokine release in the airways. , 1999, Journal of immunology.
[56] J. Tekstra,et al. Expression of MCP-1 by reactive astrocytes in demyelinating multiple sclerosis lesions. , 1999, The American journal of pathology.
[57] C. Brosnan,et al. MCP-1, MCP-2 and MCP-3 expression in multiple sclerosis lesions: an immunohistochemical and in situ hybridization study , 1998, Journal of Neuroimmunology.
[58] J. Newcombe,et al. Expression of monocyte chemoattractant protein-1 and other β-chemokines by resident glia and inflammatory cells in multiple sclerosis lesions , 1998, Journal of Neuroimmunology.
[59] C. Mackay,et al. Flexible Programs of Chemokine Receptor Expression on Human Polarized T Helper 1 and 2 Lymphocytes , 1998, The Journal of experimental medicine.
[60] P. Allavena,et al. Differential Expression of Chemokine Receptors and Chemotactic Responsiveness of Type 1 T Helper Cells (Th1s) and Th2s , 1998, The Journal of experimental medicine.
[61] L Adorini,et al. The interleukin-12/interleukin-12-receptor system: role in normal and pathologic immune responses. , 1998, Annual review of immunology.
[62] Richard A Flavell,et al. The Transcription Factor GATA-3 Is Necessary and Sufficient for Th2 Cytokine Gene Expression in CD4 T Cells , 1997, Cell.
[63] Kenneth M. Murphy,et al. Functional diversity of helper T lymphocytes , 1996, Nature.
[64] J. Banchereau,et al. T cell interleukin-17 induces stromal cells to produce proinflammatory and hematopoietic cytokines , 1996, The Journal of experimental medicine.
[65] L. Steinman,et al. The T lymphocyte in experimental allergic encephalomyelitis. , 1990, Annual review of immunology.
[66] R. Coffman,et al. TH1 and TH2 cells: different patterns of lymphokine secretion lead to different functional properties. , 1989, Annual review of immunology.