T Cell Zone Resident Macrophages Silently Dispose of Apoptotic Cells in the Lymph Node
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S. Wienert | F. Klauschen | M. Bajénoff | D. Dembélé | B. Malissen | J. Nowak | M. Dalod | M. Baratin | R. Gentek | L. Simon | Audrey Jorquera | Clément Ghigo | Rebecca Gentek | Marc Bajénoff
[1] W. Shipman,et al. Regulation of Lymph Node Vascular-Stromal Compartment by Dendritic Cells. , 2016, Trends in immunology.
[2] N. McGovern,et al. Unsupervised High-Dimensional Analysis Aligns Dendritic Cells across Tissues and Species , 2016, Immunity.
[3] Burkhard Ludewig,et al. Topological Small-World Organization of the Fibroblastic Reticular Cell Network Determines Lymph Node Functionality , 2016, PLoS biology.
[4] F. Ginhoux,et al. Comparative genomics analysis of mononuclear phagocyte subsets confirms homology between lymphoid tissue-resident and dermal XCR1+ DCs in mouse and human and distinguishes them from Langerhans cells , 2016, Journal of immunological methods.
[5] T. Wynn,et al. Macrophages in Tissue Repair, Regeneration, and Fibrosis. , 2016, Immunity.
[6] Carla M. T. Bauer,et al. Self-renewing resident arterial macrophages arise from embryonic CX3CR1+ precursors and circulating monocytes immediately after birth , 2015, Nature Immunology.
[7] Thien-Phong Vu Manh,et al. Characterization of Dendritic Cell Subsets Through Gene Expression Analysis. , 2016, Methods in molecular biology.
[8] F. Geissmann,et al. The development and maintenance of resident macrophages , 2015, Nature Immunology.
[9] F. Ginhoux,et al. Ontogeny of Tissue-Resident Macrophages , 2015, Front. Immunol..
[10] L. van de Laar,et al. A Hitchhiker’s Guide to Myeloid Cell Subsets: Practical Implementation of a Novel Mononuclear Phagocyte Classification System , 2015, Front. Immunol..
[11] M. Divangahi. Efferocytosis: Burying cell corpses to regulate tolerance and immunity , 2015, Oncotarget.
[12] C. Rozo,et al. A dendritic-cell-stromal axis maintains immune responses in lymph nodes. , 2015, Immunity.
[13] N. Rosenthal,et al. Progressive replacement of embryo-derived cardiac macrophages with age , 2014, The Journal of experimental medicine.
[14] F. Geissmann,et al. Correction: Corrigendum: Constant replenishment from circulating monocytes maintains the macrophage pool in the intestine of adult mice , 2014, Nature Immunology.
[15] R. Germain,et al. Spatiotemporal basis of innate and adaptive immunity in secondary lymphoid tissue. , 2014, Annual review of cell and developmental biology.
[16] Burkhard Ludewig,et al. B cell homeostasis and follicle confines are governed by fibroblastic reticular cells , 2014, Nature Immunology.
[17] Florent Ginhoux,et al. Dendritic cells, monocytes and macrophages: a unified nomenclature based on ontogeny , 2014, Nature Reviews Immunology.
[18] S. Behar,et al. Macrophages clean up: efferocytosis and microbial control. , 2014, Current opinion in microbiology.
[19] M. Jaeger,et al. CX3CR1-dependent renal macrophage survival promotes Candida control and host survival. , 2013, The Journal of clinical investigation.
[20] S. Wienert,et al. Multicolor fate mapping of Langerhans cell homeostasis , 2013, The Journal of experimental medicine.
[21] S. Zelenay,et al. Genetic Tracing via DNGR-1 Expression History Defines Dendritic Cells as a Hematopoietic Lineage , 2013, Cell.
[22] M. Gelb,et al. Lymphoid tissue phospholipase A2 group IID resolves contact hypersensitivity by driving antiinflammatory lipid mediators , 2013, The Journal of experimental medicine.
[23] A. Mildner,et al. Fate mapping reveals origins and dynamics of monocytes and tissue macrophages under homeostasis. , 2013, Immunity.
[24] Amin R. Mazloom,et al. Gene-expression profiles and transcriptional regulatory pathways that underlie the identity and diversity of mouse tissue macrophages , 2012, Nature Immunology.
[25] Daigo Hashimoto,et al. Deciphering the transcriptional network of the DC lineage , 2012, Nature Immunology.
[26] M. Nussenzweig,et al. Expression of the zinc finger transcription factor zDC (Zbtb46, Btbd4) defines the classical dendritic cell lineage , 2012, The Journal of experimental medicine.
[27] F. Ginhoux,et al. Adult Langerhans cells derive predominantly from embryonic fetal liver monocytes with a minor contribution of yolk sac–derived macrophages , 2012, The Journal of experimental medicine.
[28] Ansuman T. Satpathy,et al. Zbtb46 expression distinguishes classical dendritic cells and their committed progenitors from other immune lineages , 2012, The Journal of experimental medicine.
[29] Elizabeth E Gray,et al. Lymph Node Macrophages , 2012, Journal of Innate Immunity.
[30] S. Zahner,et al. Conditional Deletion of TGF-βR1 Using Langerin-Cre Mice Results in Langerhans Cell Deficiency and Reduced Contact Hypersensitivity , 2011, The Journal of Immunology.
[31] M. Merad,et al. Studying the mononuclear phagocyte system in the molecular age , 2011, Nature Reviews Immunology.
[32] K. Ravichandran. Beginnings of a good apoptotic meal: the find-me and eat-me signaling pathways. , 2011, Immunity.
[33] T. Wynn,et al. Protective and pathogenic functions of macrophage subsets , 2011, Nature Reviews Immunology.
[34] J. Penninger,et al. Brief Definitive Report , 2003 .
[35] S. Gorr,et al. Human parotid secretory protein is a lipopolysaccharide-binding protein: identification of an anti-inflammatory peptide domain , 2011, Molecular and Cellular Biochemistry.
[36] F. Finkelman,et al. Local Macrophage Proliferation, Rather than Recruitment from the Blood, Is a Signature of TH2 Inflammation , 2011, Science.
[37] Z. Rahman,et al. Impaired Apoptotic Cell Clearance in the Germinal Center by Mer-Deficient Tingible Body Macrophages Leads to Enhanced Antibody-Forming Cell and Germinal Center Responses , 2010, The Journal of Immunology.
[38] F. Ginhoux,et al. Fate Mapping Analysis Reveals That Adult Microglia Derive from Primitive Macrophages , 2010, Science.
[39] P. Chambon,et al. Langerhans cell (LC) proliferation mediates neonatal development, homeostasis, and inflammation-associated expansion of the epidermal LC network , 2009, The Journal of experimental medicine.
[40] R. Germain,et al. B-cell follicle development remodels the conduit system and allows soluble antigen delivery to follicular dendritic cells. , 2009, Blood.
[41] F. Ginhoux,et al. Conventional Dendritic Cells at the Crossroads Between Immunity and Cholesterol Homeostasis in Atherosclerosis , 2009, Circulation.
[42] O. Ohara,et al. Novel Subset of CD8α+ Dendritic Cells Localized in the Marginal Zone Is Responsible for Tolerance to Cell-Associated Antigens1 , 2009, The Journal of Immunology.
[43] J. Pollard. Trophic macrophages in development and disease , 2009, Nature Reviews Immunology.
[44] Anna M. Keller,et al. Identification of a dendritic cell receptor that couples sensing of necrosis to immunity , 2009, Nature.
[45] R. Nibbs,et al. CX3CL1/fractalkine is released from apoptotic lymphocytes to stimulate macrophage chemotaxis. , 2008, Blood.
[46] J. Mora,et al. A two‐step model for Langerhans cell migration to skin‐draining LN , 2008, European journal of immunology.
[47] Eric Vivier,et al. Novel insights into the relationships between dendritic cell subsets in human and mouse revealed by genome-wide expression profiling , 2008, Genome Biology.
[48] N. D. Di Paolo,et al. Subcapsular sinus macrophages in lymph nodes clear lymph-borne viruses and present them to antiviral B cells , 2007, Nature.
[49] T. Phan,et al. Subcapsular encounter and complement-dependent transport of immune complexes by lymph node B cells , 2007, Nature Immunology.
[50] F. Batista,et al. B cells acquire particulate antigen in a macrophage-rich area at the boundary between the follicle and the subcapsular sinus of the lymph node. , 2007, Immunity.
[51] H. Fehling,et al. Faithful activation of an extra‐bright red fluorescent protein in “knock‐in” Cre‐reporter mice ideally suited for lineage tracing studies , 2007, European journal of immunology.
[52] H. Sandoval,et al. Dendritic Cell Apoptosis in the Maintenance of Immune Tolerance , 2006, Science.
[53] R. Zinkernagel,et al. Histological analysis of CD11c‐DTR/GFP mice after in vivo depletion of dendritic cells , 2005, Clinical and experimental immunology.
[54] Antonio Lanzavecchia,et al. Regulation of Dendritic Cell Migration to the Draining Lymph Node , 2003, The Journal of experimental medicine.
[55] S. Gorr,et al. Expression and anti-bacterial activity of human parotid secretory protein (PSP). , 2003, Biochemical Society transactions.
[56] R. Mebius. Organogenesis of lymphoid tissues , 2003, Nature reviews. Immunology.
[57] I. Weissman,et al. Langerhans cells renew in the skin throughout life under steady-state conditions , 2002, Nature Immunology.
[58] D. Tough,et al. Developmental kinetics and lifespan of dendritic cells in mouse lymphoid organs. , 2002, Blood.
[59] R. Steinman,et al. The CD8+ Dendritic Cell Subset Selectively Endocytoses Dying Cells in Culture and In Vivo , 2002, The Journal of experimental medicine.
[60] I. Baumann,et al. Impaired uptake of apoptotic cells into tingible body macrophages in germinal centers of patients with systemic lupus erythematosus. , 2002, Arthritis and rheumatism.
[61] C. Benoist,et al. The Dendritic Cell Populations of Mouse Lymph Nodes1 , 2001, The Journal of Immunology.
[62] A. Sher,et al. Analysis of Fractalkine Receptor CX3CR1 Function by Targeted Deletion and Green Fluorescent Protein Reporter Gene Insertion , 2000, Molecular and Cellular Biology.
[63] G. F. Burton,et al. Tinigible Body Macrophages in Regulation of Germinal Center Reactions , 1998, Developmental immunology.
[64] R. Mebius,et al. The functional activity of high endothelial venules: a role for the subcapsular sinus macrophages in the lymph node. , 1991, Immunobiology.
[65] M. Rep,et al. Macrophages in T and B Cell Compartments and Other Tissue Macrophages Recognized by Monoclonal Antibody MOMA‐2 , 1987, Scandinavian journal of immunology.
[66] T. Kobayasi. [The Langerhans cells]. , 1975, Ugeskrift for laeger.