Memory CD8(+) T Cells: Innate-Like Sensors and Orchestrators of Protection.
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[1] Ramon Arens,et al. In Vivo Killing Capacity of Cytotoxic T Cells Is Limited and Involves Dynamic Interactions and T Cell Cooperativity , 2016, Immunity.
[2] K. Crozat,et al. XCR1+ dendritic cells promote memory CD8+ T cell recall upon secondary infections with Listeria monocytogenes or certain viruses , 2016, The Journal of experimental medicine.
[3] A. Oxenius,et al. The Salivary Gland Acts as a Sink for Tissue-Resident Memory CD8(+) T Cells, Facilitating Protection from Local Cytomegalovirus Infection. , 2015, Cell reports.
[4] Corinne J. Smith,et al. Murine CMV Infection Induces the Continuous Production of Mucosal Resident T Cells. , 2015, Cell reports.
[5] L. Hancox,et al. Inflammatory IL-15 is required for optimal memory T cell responses. , 2015, The Journal of clinical investigation.
[6] E. Wherry,et al. Molecular and cellular insights into T cell exhaustion , 2015, Nature Reviews Immunology.
[7] F. Carbone. Tissue-Resident Memory T Cells and Fixed Immune Surveillance in Nonlymphoid Organs , 2015, The Journal of Immunology.
[8] Lukas E Dow,et al. Inducible in vivo genome editing with CRISPR/Cas9 , 2015, Nature Biotechnology.
[9] John T. Chang,et al. Molecular regulation of effector and memory T cell differentiation , 2014, Nature Immunology.
[10] S. Kaech,et al. CD4+ T cell help guides formation of CD103+ lung-resident memory CD8+ T cells during influenza viral infection. , 2014, Immunity.
[11] G. Lauvau,et al. NK1.1+ CD8+ T cells escape TGF-β control and contribute to early microbial pathogen response , 2014, Nature Communications.
[12] Ji-Ying Song,et al. Skin-resident memory CD8+ T cells trigger a state of tissue-wide pathogen alert , 2014, Science.
[13] A. Iwasaki,et al. A local macrophage chemokine network sustains protective tissue-resident memory CD4 T cells , 2014, Science.
[14] J. Schenkel,et al. Resident memory CD8 T cells trigger protective innate and adaptive immune responses , 2014, Science.
[15] D. Palliser,et al. Memory-T-cell-derived interferon-γ instructs potent innate cell activation for protective immunity. , 2014, Immunity.
[16] J. Schenkel,et al. Cutting Edge: Resident Memory CD8 T Cells Occupy Frontline Niches in Secondary Lymphoid Organs , 2014, The Journal of Immunology.
[17] J. Harty,et al. IL-15 regulates memory CD8+ T cell O-glycan synthesis and affects trafficking. , 2014, The Journal of clinical investigation.
[18] S. Atif,et al. Toll-like receptor and inflammasome signals converge to amplify the innate bactericidal capacity of T helper 1 cells. , 2014, Immunity.
[19] S. Kaech,et al. Lung airway-surveilling CXCR3(hi) memory CD8(+) T cells are critical for protection against influenza A virus. , 2013, Immunity.
[20] M. Nussenzweig,et al. Intestinal monocytes and macrophages are required for T cell polarization in response to Citrobacter rodentium , 2013, The Journal of experimental medicine.
[21] A. Iwasaki,et al. Tissue‐resident memory T cells , 2013, Immunological reviews.
[22] J. Egen,et al. Peripheral prepositioning and local CXCL9 chemokine-mediated guidance orchestrate rapid memory CD8+ T cell responses in the lymph node. , 2013, Immunity.
[23] J. Schenkel,et al. Sensing and alarm function of resident memory CD8+ T cells , 2013, Nature Immunology.
[24] C. Beadling,et al. Cytokine-mediated programmed proliferation of virus-specific CD8(+) memory T cells. , 2013, Immunity.
[25] Jacco van Rheenen,et al. Tissue-resident memory CD8+ T cells continuously patrol skin epithelia to quickly recognize local antigen , 2012, Proceedings of the National Academy of Sciences.
[26] G. Lauvau,et al. Inflammatory monocytes activate memory CD8(+) T and innate NK lymphocytes independent of cognate antigen during microbial pathogen invasion. , 2012, Immunity.
[27] Ronald N. Germain,et al. A Spatially-Organized Multicellular Innate Immune Response in Lymph Nodes Limits Systemic Pathogen Spread , 2012, Cell.
[28] A. Iwasaki,et al. A vaccine strategy protects against genital herpes by establishing local memory T cells , 2012, Nature.
[29] U. V. von Andrian,et al. Chemokine Guidance of Central Memory T Cells Is Critical for Antiviral Recall Responses in Lymph Nodes , 2012, Cell.
[30] Suzanne P. M. Welten,et al. Memory T cell inflation: understanding cause and effect. , 2012, Trends in immunology.
[31] A. Shaw,et al. RAE1ε ligand expressed on pancreatic islets recruits NKG2D receptor-expressing cytotoxic T cells independent of T cell receptor recognition. , 2012, Immunity.
[32] J. Tschopp,et al. NLRC4 inflammasomes in dendritic cells regulate noncognate effector function by memory CD8+ T cells , 2012, Nature Immunology.
[33] F. Geissmann,et al. Inflammatory Monocytes and Neutrophils Are Licensed to Kill during Memory Responses In Vivo , 2011, PLoS pathogens.
[34] J. Harty,et al. Naive, effector and memory CD8 T-cell trafficking: parallels and distinctions. , 2011, Immunotherapy.
[35] H. Pircher,et al. E-cadherin promotes accumulation of a unique memory CD8 T-cell population in murine salivary glands , 2011, Proceedings of the National Academy of Sciences.
[36] Thomas Gebhardt,et al. Different patterns of peripheral migration by memory CD4+ and CD8+ T cells , 2011, Nature.
[37] Mark J. Miller,et al. CD8α(+) dendritic cells are an obligate cellular entry point for productive infection by Listeria monocytogenes. , 2011, Immunity.
[38] E. Wherry. T cell exhaustion , 2011, Nature Immunology.
[39] Thomas C. Wirth,et al. Secondary CD8+ T‐cell responses are controlled by systemic inflammation , 2011, European journal of immunology.
[40] T. Hohl,et al. Bone marrow mesenchymal stem and progenitor cells induce monocyte emigration in response to circulating toll-like receptor ligands. , 2011, Immunity.
[41] Shannon C Miller,et al. Type I interferons regulate cytolytic activity of memory CD8(+) T cells in the lung airways during respiratory virus challenge. , 2010, Immunity.
[42] M. Bajénoff,et al. Visualizing Early Splenic Memory CD8+ T Cells Reactivation against Intracellular Bacteria in the Mouse , 2010, PloS one.
[43] S. Kaech,et al. Generation of effector CD8+ T cells and their conversion to memory T cells , 2010, Immunological reviews.
[44] T. Hohl,et al. Inflammatory monocytes facilitate adaptive CD4 T cell responses during respiratory fungal infection. , 2009, Cell host & microbe.
[45] A. Iwasaki,et al. CTL mobilization to virus-infected tissue requires CD4+ T cell help , 2009, Nature.
[46] Marion Pepper,et al. Tracking epitope-specific T cells , 2009, Nature Protocols.
[47] D. Hume,et al. CX3CR1+ CD115+ CD135+ common macrophage/DC precursors and the role of CX3CR1 in their response to inflammation , 2009, The Journal of experimental medicine.
[48] Mark J. Miller,et al. The cellular niche of Listeria monocytogenes infection changes rapidly in the spleen , 2009, European journal of immunology.
[49] E. Unanue,et al. Batf3 Deficiency Reveals a Critical Role for CD8α+ Dendritic Cells in Cytotoxic T Cell Immunity , 2008, Science.
[50] G. Shellam,et al. Memory inflation during chronic viral infection is maintained by continuous production of short-lived, functional T cells. , 2008, Immunity.
[51] David L. Woodland,et al. The chemokine receptor CCR5 plays a key role in the early memory CD8+ T cell response to respiratory virus infections. , 2008, Immunity.
[52] N. Van Rooijen,et al. Dendritic Cell-Induced Memory T Cell Activation in Nonlymphoid Tissues , 2008, Science.
[53] J. Cazareth,et al. Memory CD8+ T cells mediate antibacterial immunity via CCL3 activation of TNF/ROI+ phagocytes , 2007, The Journal of experimental medicine.
[54] A. Bäumler. Faculty Opinions recommendation of Innate immune activation of CD4 T cells in salmonella-infected mice is dependent on IL-18. , 2007 .
[55] Ronald N Germain,et al. L-selectin-negative CCR7− effector and memory CD8+ T cells enter reactive lymph nodes and kill dendritic cells , 2007, Nature Immunology.
[56] M. Diamond,et al. Herpesvirus latency confers symbiotic protection from bacterial infection , 2007, Nature.
[57] M. Bevan,et al. Effector and memory CTL differentiation. , 2007, Annual review of immunology.
[58] Christian Stemberger,et al. CD8alpha+ dendritic cells are required for efficient entry of Listeria monocytogenes into the spleen. , 2006, Immunity.
[59] J. Harty,et al. Inflaming the CD8+ T cell response. , 2006, Immunity.
[60] E. Pamer,et al. Monocyte emigration from bone marrow during bacterial infection requires signals mediated by chemokine receptor CCR2 , 2006, Nature Immunology.
[61] Quynh-Mai Pham,et al. Dendritic cells maximize the memory CD8 T cell response to infection. , 2005, Immunity.
[62] Steffen Jung,et al. Distinct in vivo dendritic cell activation by live versus killed Listeria monocytogenes , 2005, European journal of immunology.
[63] S. Akira,et al. Sequential MyD88-independent and -dependent activation of innate immune responses to intracellular bacterial infection. , 2003, Immunity.
[64] J. Forman,et al. Memory CD8+ T Cells Provide Innate Immune Protection against Listeria monocytogenes in the Absence of Cognate Antigen , 2003, The Journal of experimental medicine.
[65] E. Wherry,et al. Cutting Edge: Rapid In Vivo Killing by Memory CD8 T Cells1 , 2003, The Journal of Immunology.
[66] R. Salomon,et al. Dendritic Cell Responses to Early Murine Cytomegalovirus Infection , 2003, The Journal of experimental medicine.
[67] Alan D. Roberts,et al. Nonspecific Recruitment of Memory CD8+ T Cells to the Lung Airways During Respiratory Virus Infections1 , 2003, The Journal of Immunology.
[68] Steffen Jung,et al. In vivo depletion of CD11c+ dendritic cells abrogates priming of CD8+ T cells by exogenous cell-associated antigens. , 2002, Immunity.
[69] A. Scheffold,et al. MIP-1α, MIP-1β, RANTES, and ATAC/lymphotactin function together with IFN-γ as type 1 cytokines , 2002, Proceedings of the National Academy of Sciences of the United States of America.
[70] E. Pamer,et al. Priming of Memory But Not Effector CD8 T Cells by a Killed Bacterial Vaccine , 2001, Science.
[71] R. Kastelein,et al. A Critical Role for Interleukin 18 in Primary and Memory Effector Responses to Listeria monocytogenes That Extends Beyond Its Effects on Interferon γ Production , 2001, The Journal of experimental medicine.
[72] D. Busch,et al. Differing Roles of Inflammation and Antigen in T Cell Proliferation and Memory Generation1 , 2000, The Journal of Immunology.
[73] J. Sprent,et al. Potent and selective stimulation of memory-phenotype CD8+ T cells in vivo by IL-15. , 1998, Immunity.
[74] J. Harty,et al. Perforin-Deficient CD8+ T Cells Provide Immunity to Listeria monocytogenes by a Mechanism That Is Independent of CD95 and IFN-γ but Requires TNF-α , 1998, The Journal of Immunology.
[75] J. Sprent,et al. Induction of Bystander T Cell Proliferation by Viruses and Type I Interferon in Vivo , 1996, Science.
[76] R. van Furth,et al. Tumour necrosis factor, but not interferon-gamma, is essential for acquired resistance to Listeria monocytogenes during a secondary infection in mice. , 1995, Immunology.
[77] J. Sheridan,et al. Requirement of MIP-1 alpha for an inflammatory response to viral infection. , 1995, Science.
[78] B. Ryffel,et al. Distinct and nonredundant in vivo functions of TNF produced by t cells and macrophages/neutrophils: protective and deleterious effects. , 2005, Immunity.
[79] J. Harty,et al. CD8+ T cell effector mechanisms in resistance to infection. , 2000, Annual review of immunology.
[80] C. Mackay,et al. The role of chemokine receptors in primary, effector, and memory immune responses. , 2000, Annual review of immunology.
[81] J. Harty,et al. Perforin-deficient CD8+ T cells provide immunity to Listeria monocytogenes by a mechanism that is independent of CD95 and IFN-gamma but requires TNF-alpha. , 1998, Journal of immunology.