Tissue Determinants of Human NK Cell Development, Function, and Residence
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Yufeng Shen | L. Lanier | L. Fong | D. Farber | P. Szabo | P. Dogra | R. Matsumoto | T. Senda | Puspa Thapa | M. Tóth | J. Arakawa-Hoyt | D. Carpenter | Wenji Ma | Masaru Kubota | Chiara Rancan | Jacky Y. Li | M. M. Li Poon | Rei Matsumoto | Maya Meimei Li Poon
[1] F. Colucci. Faculty Opinions recommendation of Tissue determinants of human NK cell development, function, and residence. , 2020, Faculty Opinions – Post-Publication Peer Review of the Biomedical Literature.
[2] Jeff E. Mold,et al. Unique transcriptional and protein-expression signature in human lung tissue-resident NK cells , 2019, Nature Communications.
[3] A. Poggi,et al. Human Gut-Associated Natural Killer Cells in Health and Disease , 2019, Front. Immunol..
[4] D. Farber,et al. Location, location, location: Tissue resident memory T cells in mice and humans , 2019, Science Immunology.
[5] R. Xavier,et al. Spatial and Temporal Mapping of Human Innate Lymphoid Cells Reveals Elements of Tissue Specificity , 2019, Immunity.
[6] D. Masopust,et al. Tissue-Resident T Cells and Other Resident Leukocytes. , 2019, Annual review of immunology.
[7] R. Johnson,et al. Gene Regulatory Programs Conferring Phenotypic Identities to Human NK Cells , 2019, Cell.
[8] H. Binder,et al. pcaExplorer: an R/Bioconductor package for interacting with RNA-seq principal components , 2018, bioRxiv.
[9] D. Farber,et al. Microanatomical dissection of human intestinal T-cell immunity reveals site-specific changes in gut-associated lymphoid tissues over life , 2018, Mucosal Immunology.
[10] Eric Vivier,et al. High-Dimensional Single-Cell Analysis Identifies Organ-Specific Signatures and Conserved NK Cell Subsets in Humans and Mice , 2018, Immunity.
[11] S. Regis,et al. Molecular Mechanisms Directing Migration and Retention of Natural Killer Cells in Human Tissues , 2018, Front. Immunol..
[12] M. Schilham,et al. Human Bone Marrow-Resident Natural Killer Cells Have a Unique Transcriptional Profile and Resemble Resident Memory CD8+ T Cells , 2018, Front. Immunol..
[13] Aaron M. Rosenfeld,et al. Human Lymph Nodes Maintain TCF-1hi Memory T Cells with High Functional Potential and Clonal Diversity throughout Life , 2018, The Journal of Immunology.
[14] Chao Yang,et al. Natural Killer Cells: Development, Maturation, and Clinical Utilization , 2018, Front. Immunol..
[15] R. Locksley,et al. Innate Lymphoid Cells: 10 Years On , 2018, Cell.
[16] S. Navarro,et al. A Systematic Review: The Role of Resident Memory T Cells in Infectious Diseases and Their Relevance for Vaccine Development , 2018, Front. Immunol..
[17] Elmar Eisemann,et al. Mass cytometry reveals innate lymphoid cell differentiation pathways in the human fetal intestine , 2018, The Journal of experimental medicine.
[18] D. Tscharke,et al. Tissue‐resident memory T cells in tissue homeostasis, persistent infection, and cancer surveillance , 2018, Immunological reviews.
[19] E. Sahai,et al. NK Cells Stimulate Recruitment of cDC1 into the Tumor Microenvironment Promoting Cancer Immune Control , 2018, Cell.
[20] A. Friedman,et al. Human immunology studies using organ donors: Impact of clinical variations on immune parameters in tissues and circulation , 2018, American journal of transplantation : official journal of the American Society of Transplantation and the American Society of Transplant Surgeons.
[21] M. Caligiuri,et al. The Broad Spectrum of Human Natural Killer Cell Diversity. , 2017, Immunity.
[22] Yufeng Shen,et al. Human Tissue-Resident Memory T Cells Are Defined by Core Transcriptional and Functional Signatures in Lymphoid and Mucosal Sites. , 2017, Cell reports.
[23] Z. Tian,et al. Diversity of tissue-resident NK cells. , 2017, Seminars in immunology.
[24] Jing Wang,et al. WebGestalt 2017: a more comprehensive, powerful, flexible and interactive gene set enrichment analysis toolkit , 2017, Nucleic Acids Res..
[25] F. Colucci,et al. Uterine Natural Killer Cells: Functional Distinctions and Influence on Pregnancy in Humans and Mice , 2017, Front. Immunol..
[26] S. Dahlén,et al. Human lung natural killer cells are predominantly comprised of highly differentiated hypofunctional CD69−CD56dim cells , 2017, The Journal of allergy and clinical immunology.
[27] M. Caligiuri,et al. Modeling Human Natural Killer Cell Development in the Era of Innate Lymphoid Cells , 2017, Front. Immunol..
[28] D. Farber,et al. Dendritic Cells Display Subset and Tissue‐Specific Maturation Dynamics over Human Life , 2017, Immunity.
[29] E. Wherry,et al. Deep immune profiling by mass cytometry links human T and NK cell differentiation and cytotoxic molecule expression patterns. , 2017, Journal of immunological methods.
[30] F. Goodrum,et al. Tissue reservoirs of antiviral T cell immunity in persistent human CMV infection , 2017, The Journal of experimental medicine.
[31] N. Zwirner,et al. Regulation of NK Cell Activation and Effector Functions by the IL-12 Family of Cytokines: The Case of IL-27 , 2017, Front. Immunol..
[32] H. Clevers,et al. Programs for the persistence, vigilance and control of human CD8+ lung-resident memory T cells , 2016, Nature Immunology.
[33] W. Shi,et al. Hobit and Blimp1 instruct a universal transcriptional program of tissue residency in lymphocytes , 2016, Science.
[34] L. Moretta,et al. Unique Eomes+ NK Cell Subsets Are Present in Uterus and Decidua During Early Pregnancy , 2016, Front. Immunol..
[35] Lewis L. Lanier,et al. NK cells and cancer: you can teach innate cells new tricks , 2015, Nature Reviews Cancer.
[36] E. Clambey,et al. Tissue-Resident NK Cells Mediate Ischemic Kidney Injury and Are Not Depleted by Anti–Asialo-GM1 Antibody , 2015, The Journal of Immunology.
[37] Joseph C. Sun,et al. Natural Killer Cell Memory. , 2015, Immunity.
[38] Wei Wang,et al. NK Cell-Mediated Antibody-Dependent Cellular Cytotoxicity in Cancer Immunotherapy , 2015, Front. Immunol..
[39] L. Lanier,et al. Epigenetic modification and antibody-dependent expansion of memory-like NK cells in human cytomegalovirus-infected individuals. , 2015, Immunity.
[40] H. Ljunggren,et al. Cytomegalovirus infection drives adaptive epigenetic diversification of NK cells with altered signaling and effector function. , 2015, Immunity.
[41] W. Huber,et al. Moderated estimation of fold change and dispersion for RNA-seq data with DESeq2 , 2014, Genome Biology.
[42] Yufeng Shen,et al. Spatial Map of Human T Cell Compartmentalization and Maintenance over Decades of Life , 2014, Cell.
[43] L. Lanier,et al. Cutting Edge: NKG2ChiCD57+ NK Cells Respond Specifically to Acute Infection with Cytomegalovirus and Not Epstein–Barr Virus , 2014, The Journal of Immunology.
[44] Maxim N. Artyomov,et al. Tissue-resident natural killer (NK) cells are cell lineages distinct from thymic and conventional splenic NK cells , 2014, eLife.
[45] J. Schenkel,et al. Cutting Edge: Resident Memory CD8 T Cells Occupy Frontline Niches in Secondary Lymphoid Organs , 2014, The Journal of Immunology.
[46] M. Caligiuri,et al. Location and cellular stages of natural killer cell development. , 2013, Trends in immunology.
[47] Gary E. Swan,et al. Genetic and Environmental Determinants of Human NK Cell Diversity Revealed by Mass Cytometry , 2013, Science Translational Medicine.
[48] Edward Y. Chen,et al. Enrichr: interactive and collaborative HTML5 gene list enrichment analysis tool , 2013, BMC Bioinformatics.
[49] Sungjin Kim,et al. Cutting Edge: Antibody-Dependent Memory-like NK Cells Distinguished by FcRγ Deficiency , 2013, The Journal of Immunology.
[50] Joseph C. Sun,et al. Proinflammatory cytokine signaling required for the generation of natural killer cell memory , 2012, The Journal of experimental medicine.
[51] Eric Vivier,et al. Targeting natural killer cells and natural killer T cells in cancer , 2012, Nature Reviews Immunology.
[52] R. Clark,et al. Skin infection generates non-migratory memory CD8+ TRM cells providing global skin immunity , 2012, Nature.
[53] E. Wherry,et al. Cutting Edge: Tissue-Retentive Lung Memory CD4 T Cells Mediate Optimal Protection to Respiratory Virus Infection , 2011, The Journal of Immunology.
[54] F. Shi,et al. Organ-specific features of natural killer cells , 2011, Nature Reviews Immunology.
[55] Sean C. Bendall,et al. Extracting a Cellular Hierarchy from High-dimensional Cytometry Data with SPADE , 2011, Nature Biotechnology.
[56] P. J. Norris,et al. Expansion of a unique CD57+NKG2Chi natural killer cell subset during acute human cytomegalovirus infection , 2011, Proceedings of the National Academy of Sciences.
[57] G. Pawelec,et al. Role of CMV in immune senescence. , 2011, Virus research.
[58] F. Takei,et al. Unique progenitors in mouse lymph node develop into CD127+ NK cells: thymus-dependent and thymus-independent pathways. , 2011, Blood.
[59] S. Agrawal,et al. Killer immunoglobulin-like receptors (KIRs) and HLA-C allorecognition patterns implicative of dominant activation of natural killer cells contribute to recurrent miscarriages. , 2011, Human reproduction.
[60] M. Smyth,et al. Activating and inhibitory receptors of natural killer cells , 2011, Immunology and cell biology.
[61] H. Pircher,et al. CD57 defines a functionally distinct population of mature NK cells in the human CD56dimCD16+ NK-cell subset. , 2010, Blood.
[62] H. Ljunggren,et al. Expression patterns of NKG2A, KIR, and CD57 define a process of CD56dim NK-cell differentiation uncoupled from NK-cell education. , 2010, Blood.
[63] J. Harty,et al. Differentiation and persistence of memory CD8(+) T cells depend on T cell factor 1. , 2010, Immunity.
[64] Pedro M. Valero-Mora,et al. ggplot2: Elegant Graphics for Data Analysis , 2010 .
[65] Joseph C. Sun,et al. Immune memory redefined: characterizing the longevity of natural killer cells , 2010, Immunological reviews.
[66] Hadley Wickham,et al. ggplot2 - Elegant Graphics for Data Analysis (2nd Edition) , 2017 .
[67] Liping Yang,et al. Cytokine-induced memory-like natural killer cells , 2009, Proceedings of the National Academy of Sciences.
[68] Joseph C. Sun,et al. Adaptive Immune Features of Natural Killer Cells , 2009, Nature.
[69] Lewis L Lanier,et al. Up on the tightrope: natural killer cell activation and inhibition , 2008, Nature Immunology.
[70] Todd A Fehniger,et al. Acquisition of murine NK cell cytotoxicity requires the translation of a pre-existing pool of granzyme B and perforin mRNAs. , 2007, Immunity.
[71] John D. Hunter,et al. Matplotlib: A 2D Graphics Environment , 2007, Computing in Science & Engineering.
[72] M. Degli-Esposti,et al. The interplay between host and viral factors in shaping the outcome of cytomegalovirus infection , 2007, Immunology and cell biology.
[73] J. D. Di Santo,et al. Bone marrow versus thymic pathways of natural killer cell development , 2006, Immunological reviews.
[74] J. Orange. Human natural killer cell deficiencies , 2006, Current opinion in allergy and clinical immunology.
[75] A. Cumano,et al. A thymic pathway of mouse natural killer cell development characterized by expression of GATA-3 and CD127 , 2006, Nature Immunology.
[76] A. Angulo,et al. Expansion of CD94/NKG2C+ NK cells in response to human cytomegalovirus-infected fibroblasts. , 2006, Blood.
[77] U. V. Andrian,et al. T cell– and B cell–independent adaptive immunity mediated by natural killer cells , 2006, Nature Immunology.
[78] Mitchell Kronenberg,et al. Intravascular Immune Surveillance by CXCR6+ NKT Cells Patrolling Liver Sinusoids , 2005, PLoS biology.
[79] M. Caligiuri,et al. A human CD34(+) subset resides in lymph nodes and differentiates into CD56bright natural killer cells. , 2005, Immunity.
[80] N. Malats,et al. Imprint of human cytomegalovirus infection on the NK cell receptor repertoire. , 2004, Blood.
[81] Jessica M Malenfant,et al. CD107a as a functional marker for the identification of natural killer cell activity. , 2004, Journal of immunological methods.
[82] P. Park,et al. Human Decidual Natural Killer Cells Are a Unique NK Cell Subset with Immunomodulatory Potential , 2003, The Journal of experimental medicine.
[83] L. Lanier,et al. Direct Recognition of Cytomegalovirus by Activating and Inhibitory NK Cell Receptors , 2002, Science.
[84] Adelheid Cerwenka,et al. Natural killer cells, viruses and cancer , 2001, Nature Reviews Immunology.
[85] W. Yokoyama,et al. Specific and nonspecific NK cell activation during virus infection , 2001, Nature Immunology.
[86] Raymond M. Welsh,et al. Murine Cytomegalovirus Is Regulated by a Discrete Subset of Natural Killer Cells Reactive with Monoclonal Antibody to Ly49h , 2001, The Journal of experimental medicine.
[87] M. Caligiuri,et al. Human natural killer cells: a unique innate immunoregulatory role for the CD56bright subset , 2001 .
[88] K. Nakachi,et al. Natural cytotoxic activity of peripheral-blood lymphocytes and cancer incidence: an 11-year follow-up study of a general population , 2000, The Lancet.
[89] M. Colonna,et al. A novel family of Ig‐like receptors for HLA class I molecules that modulate function of lymphoid and myeloid cells , 1999, Journal of leukocyte biology.
[90] M. Caligiuri,et al. Differential cytokine and chemokine gene expression by human NK cells following activation with IL-18 or IL-15 in combination with IL-12: implications for the innate immune response. , 1999, Journal of immunology.
[91] M. Colonna,et al. A Common Inhibitory Receptor for Major Histocompatibility Complex Class I Molecules on Human Lymphoid and Myelomonocytic Cells , 1997, The Journal of experimental medicine.
[92] M. Caligiuri,et al. Interleukin (IL) 15 is a novel cytokine that activates human natural killer cells via components of the IL-2 receptor , 1994, The Journal of experimental medicine.
[93] G. Trinchieri,et al. Cooperation of natural killer cell stimulatory factor/interleukin-12 with other stimuli in the induction of cytokines and cytotoxic cell-associated molecules in human T and NK cells. , 1994, Cellular immunology.
[94] J. Ritz,et al. Biology and clinical relevance of human natural killer cells. , 1990, Blood.
[95] T. Springer,et al. Mechanisms for regulating expression of membrane isoforms of Fc gamma RIII (CD16). , 1989, Science.
[96] L. Lanier,et al. Co-association of CD3ζ with a receptor (CD16) for IgG Fc on human natural killer cells , 1989, Nature.
[97] L. Lanier,et al. Comparative studies of human FcRIII-positive and negative natural killer cells. , 1989, Journal of immunology.
[98] L. Lanier,et al. The relationship of CD16 (Leu-11) and Leu-19 (NKH-1) antigen expression on human peripheral blood NK cells and cytotoxic T lymphocytes. , 1986, Journal of immunology.
[99] J. Nikolich-Žugich. The twilight of immunity: emerging concepts in aging of the immune system , 2017, Nature Immunology.
[100] S. Bicciato,et al. Human liver-resident CD56(bright)/CD16(neg) NK cells are retained within hepatic sinusoids via the engagement of CCR5 and CXCR6 pathways. , 2016, Journal of autoimmunity.
[101] Thomas R. Gingeras,et al. STAR: ultrafast universal RNA-seq aligner , 2013, Bioinform..
[102] M. Smyth,et al. Induction of tumor-specific T cell memory by NK cell–mediated tumor rejection , 2002, Nature Immunology.
[103] Eric Jones,et al. SciPy: Open Source Scientific Tools for Python , 2001 .
[104] J. Leiden,et al. Transcriptional regulation of T lymphocyte development and function. , 1999, Annual review of immunology.