Fibroblastic Reticular Cells: Organization and Regulation of the T Lymphocyte Life Cycle
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[1] A. Berglund,et al. Antifibrotic therapy in simian immunodeficiency virus infection preserves CD4+ T-cell populations and improves immune reconstitution with antiretroviral therapy. , 2015, The Journal of infectious diseases.
[2] D. Mooney,et al. The CLEC-2–podoplanin axis controls fibroblastic reticular cell contractility and lymph node microarchitecture , 2014, Nature Immunology.
[3] Robert P. Jenkins,et al. Dendritic Cells Control Fibroblastic Reticular Network Tension and Lymph Node Expansion , 2014, Nature.
[4] Burkhard Ludewig,et al. B cell homeostasis and follicle confines are governed by fibroblastic reticular cells , 2014, Nature Immunology.
[5] T. Heng,et al. Lymph node fibroblastic reticular cell transplants show robust therapeutic efficacy in high-mortality murine sepsis , 2014, Science Translational Medicine.
[6] D. Fearon,et al. Fibroblastic reticular cells of the lymph node are required for retention of resting but not activated CD8+ T cells , 2014, Proceedings of the National Academy of Sciences.
[7] W. Reith,et al. Lymph node stromal cells acquire peptide–MHCII complexes from dendritic cells and induce antigen-specific CD4+ T cell tolerance , 2014, The Journal of experimental medicine.
[8] S. Watson,et al. CLEC-2 is required for development and maintenance of lymph nodes. , 2014, Blood.
[9] A. Hamann,et al. The intestinal micro-environment imprints stromal cells to promote efficient Treg induction in gut-draining lymph nodes , 2013, Mucosal Immunology.
[10] M. Ishii,et al. Characterization of the IL-15 niche in primary and secondary lymphoid organs in vivo , 2014, Proceedings of the National Academy of Sciences.
[11] F. Tacchini-Cottier,et al. Trapping of naive lymphocytes triggers rapid growth and remodeling of the fibroblast network in reactive murine lymph nodes , 2013, Proceedings of the National Academy of Sciences.
[12] S. Coughlin,et al. Podoplanin maintains high endothelial venule integrity by interacting with platelet CLEC-2 , 2013, Nature.
[13] Peter Natesan Pushparaj,et al. Nitric Oxide–Induced Regulatory T Cells Inhibit Th17 but Not Th1 Cell Differentiation and Function , 2013, The Journal of Immunology.
[14] Thomas Rülicke,et al. Maturation of Lymph Node Fibroblastic Reticular Cells from Myofibroblastic Precursors Is Critical for Antiviral Immunity , 2013, Immunity.
[15] Octavio A. Quiñones,et al. Reduced inflammation and lymphoid tissue immunopathology in rhesus macaques receiving anti-tumor necrosis factor treatment during primary simian immunodeficiency virus infection. , 2013, The Journal of infectious diseases.
[16] S. Turley,et al. Stromal and hematopoietic cells in secondary lymphoid organs: partners in immunity , 2013, Immunological reviews.
[17] Susan M. Kaech,et al. Transcriptional control of effector and memory CD8+ T cell differentiation , 2012, Nature Reviews Immunology.
[18] C. Ware,et al. Lymphotoxin-β receptor signaling through NF-κB2-RelB pathway reprograms adipocyte precursors as lymph node stromal cells. , 2012, Immunity.
[19] V. Kuchroo,et al. Podoplanin-Rich Stromal Networks Induce Dendritic Cell Motility via Activation of the C-type Lectin Receptor CLEC-2 , 2012, Immunity.
[20] R. Mebius,et al. Interdependence of stromal and immune cells for lymph node function. , 2012, Trends in immunology.
[21] U. V. von Andrian,et al. Chemokine Guidance of Central Memory T Cells Is Critical for Antiviral Recall Responses in Lymph Nodes , 2012, Cell.
[22] D. Mooney,et al. Transcriptional profiling of stroma from inflamed and resting lymph nodes defines immunological hallmarks , 2012, Nature Immunology.
[23] M. Lipp,et al. Coordinated Regulation of Lymph Node Vascular–Stromal Growth First by CD11c+ Cells and Then by T and B Cells , 2011, The Journal of Immunology.
[24] P. Nelson,et al. Fibroblastic Reticular Cells From Lymph Nodes Attenuate T Cell Expansion by Producing Nitric Oxide , 2011, PloS one.
[25] Limin Liu,et al. Regulation of T Cell Priming by Lymphoid Stroma , 2011, PloS one.
[26] Kutlu G. Elpek,et al. Regulated release of nitric oxide by nonhematopoietic stroma controls expansion of the activated T cell pool in lymph nodes , 2011, Nature Immunology.
[27] S. Turley,et al. Reproducible Isolation of Lymph Node Stromal Cells Reveals Site-Dependent Differences in Fibroblastic Reticular Cells , 2011, Front. Immun..
[28] R. Roozendaal,et al. Stromal cell-immune cell interactions. , 2011, Annual review of immunology.
[29] J. Carlis,et al. Cumulative mechanisms of lymphoid tissue fibrosis and T cell depletion in HIV-1 and SIV infections. , 2011, The Journal of clinical investigation.
[30] Kutlu G. Elpek,et al. The stromal and haematopoietic antigen-presenting cells that reside in secondary lymphoid organs , 2010, Nature Reviews Immunology.
[31] R. Mebius,et al. New insights into the development of lymphoid tissues , 2010, Nature Reviews Immunology.
[32] S. Turley,et al. Lymph node fibroblastic reticular cells directly present peripheral tissue antigen under steady-state and inflammatory conditions , 2010, The Journal of experimental medicine.
[33] D. Montefiori,et al. On the composition of the preimmune repertoire of T cells specific for Peptide-major histocompatibility complex ligands. , 2010, Annual review of immunology.
[34] Joachim P Spatz,et al. Immobilized chemokine fields and soluble chemokine gradients cooperatively shape migration patterns of dendritic cells. , 2009, Immunity.
[35] Kensuke Takada,et al. Naive T cell homeostasis: from awareness of space to a sense of place , 2009, Nature Reviews Immunology.
[36] Andreas Radbruch,et al. Professional memory CD4+ T lymphocytes preferentially reside and rest in the bone marrow. , 2009, Immunity.
[37] J. Sprent,et al. Homeostasis of naive and memory T cells. , 2008, Immunity.
[38] Georg Kraal,et al. The conduit system of the lymph node. , 2008, International immunology.
[39] A. Goldrath,et al. IL-7 and IL-15 differentially regulate CD8+ T-cell subsets during contraction of the immune response. , 2008, Blood.
[40] E. Kremmer,et al. Stromal mesenteric lymph node cells are essential for the generation of gut-homing T cells in vivo , 2008, The Journal of experimental medicine.
[41] G. Hämmerling,et al. A novel CD11c.DTR transgenic mouse for depletion of dendritic cells reveals their requirement for homeostatic proliferation of natural killer cells , 2008, European journal of immunology.
[42] Atsushi Miyawaki,et al. Monitoring cellular movement in vivo with photoconvertible fluorescence protein “Kaede” transgenic mice , 2008, Proceedings of the National Academy of Sciences.
[43] R. Pabst,et al. Stromal Cells Confer Lymph Node-Specific Properties by Shaping a Unique Microenvironment Influencing Local Immune Responses1 , 2008, The Journal of Immunology.
[44] F. Liew,et al. Nitric oxide induces CD4+CD25+ Foxp3− regulatory T cells from CD4+CD25− T cells via p53, IL-2, and OX40 , 2007, Proceedings of the National Academy of Sciences.
[45] B. Hinz,et al. Fibroblastic reticular cells in lymph nodes regulate the homeostasis of naive T cells , 2007, Nature Immunology.
[46] Georges Bismuth,et al. CCR7 ligands control basal T cell motility within lymph node slices in a phosphoinositide 3–kinase– independent manner , 2007, The Journal of experimental medicine.
[47] U. V. von Andrian,et al. CCR7 ligands stimulate the intranodal motility of T lymphocytes in vivo , 2007, The Journal of experimental medicine.
[48] S. Turley,et al. Peripheral antigen display by lymph node stroma promotes T cell tolerance to intestinal self , 2007, Nature Immunology.
[49] Ronald N Germain,et al. Stromal cell networks regulate lymphocyte entry, migration, and territoriality in lymph nodes. , 2006, Immunity.
[50] S. Pambuccian,et al. Lymphatic Tissue Fibrosis Is Associated with Reduced Numbers of Naïve CD4+ T Cells in Human Immunodeficiency Virus Type 1 Infection , 2006, Clinical and Vaccine Immunology.
[51] L. Klein,et al. A central role for central tolerance. , 2006, Annual review of immunology.
[52] M. Bachmann,et al. CCL19 and CCL21 induce a potent proinflammatory differentiation program in licensed dendritic cells. , 2005, Immunity.
[53] Michael Sixt,et al. The conduit system transports soluble antigens from the afferent lymph to resident dendritic cells in the T cell area of the lymph node. , 2005, Immunity.
[54] G. Belz,et al. Transfer of antigen between migrating and lymph node-resident DCs in peripheral T-cell tolerance and immunity. , 2004, Trends in immunology.
[55] T. Hara,et al. Lymph Node Fibroblastic Reticular Cells Construct the Stromal Reticulum via Contact with Lymphocytes , 2004, The Journal of experimental medicine.
[56] I. Messaoudi,et al. The many important facets of T-cell repertoire diversity , 2004, Nature Reviews Immunology.
[57] L. Bradley,et al. Interleukin 7 Regulates the Survival and Generation of Memory CD4 Cells , 2003, The Journal of experimental medicine.
[58] Ulrich H. von Andrian,et al. Homing and cellular traffic in lymph nodes , 2003, Nature Reviews Immunology.
[59] A. Rudensky,et al. Distinct dendritic cell populations sequentially present antigen to CD4 T cells and stimulate different aspects of cell-mediated immunity. , 2003, Immunity.
[60] R. Steinman,et al. Dendritic Cell Function in Vivo during the Steady State: A Role in Peripheral Tolerance , 2003, Annals of the New York Academy of Sciences.
[61] A. Khoruts,et al. Visualizing the generation of memory CD4 T cells in the whole body , 2001, Nature.
[62] Stephen Shaw,et al. Lymph-Borne Chemokines and Other Low Molecular Weight Molecules Reach High Endothelial Venules via Specialized Conduits While a Functional Barrier Limits Access to the Lymphocyte Microenvironments in Lymph Node Cortex , 2000, The Journal of experimental medicine.
[63] J. Cyster,et al. Coexpression of the chemokines ELC and SLC by T zone stromal cells and deletion of the ELC gene in the plt/plt mouse. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[64] S. Jameson,et al. Interleukin-7 mediates the homeostasis of naïve and memory CD8 T cells in vivo , 2000, Nature Immunology.
[65] L. Lefrançois,et al. Expression of intestine-specific antigen reveals novel pathways of CD8 T cell tolerance induction. , 2000, Immunity.
[66] F. Sallusto,et al. Two subsets of memory T lymphocytes with distinct homing potentials and effector functions , 1999, Nature.
[67] Stephen Shaw,et al. Cords, channels, corridors and conduits: critical architectural elements facilitating cell interactions in the lymph node cortex , 1997, Immunological reviews.
[68] J. Herkel,et al. Estimation of the frequency of self-reactive T cells in health and inflammatory diseases by limiting dilution analysis and single cell cloning. , 1996, Journal of autoimmunity.
[69] T. Springer,et al. High endothelial venules (HEVs): specialized endothelium for lymphocyte migration. , 1995, Immunology today.