Unlocking the power of NOX2: A comprehensive review on its role in immune regulation
暂无分享,去创建一个
[1] C. Dessy,et al. Targeting M2 Macrophages with a Novel NADPH Oxidase Inhibitor , 2023, Antioxidants.
[2] A. Simeonov,et al. Development of an improved and specific inhibitor of NADPH oxidase 2 to treat traumatic brain injury , 2023, Redox biology.
[3] Yangming Xiao,et al. Redox status regulates autophagy in thymic stromal cells and promotes T cell tolerance , 2022, Proceedings of the National Academy of Sciences of the United States of America.
[4] D. Green,et al. Retraction Note: Noncanonical autophagy inhibits the autoinflammatory, lupus-like response to dying cells , 2022, Nature.
[5] U. Dianzani,et al. Cutting-Edge Delivery Systems and Adjuvants in Tolerogenic Vaccines: A Review , 2022, Pharmaceutics.
[6] T. Andrews,et al. TLR7 gain-of-function genetic variation causes human lupus , 2022, Nature.
[7] Dean P. Jones,et al. Defining roles of specific reactive oxygen species (ROS) in cell biology and physiology , 2022, Nature Reviews Molecular Cell Biology.
[8] H. M. Cochemé,et al. Redox metabolism: ROS as specific molecular regulators of cell signaling and function. , 2021, Molecular cell.
[9] David C. Thomas,et al. Beyond the Extra Respiration of Phagocytosis: NADPH Oxidase 2 in Adaptive Immunity and Inflammation , 2021, Frontiers in Immunology.
[10] R. Holmdahl,et al. Neutrophil-derived reactive oxygen species promote tumor colonization , 2021, Communications biology.
[11] M. Chang,et al. Roles of PRR-Mediated Signaling Pathways in the Regulation of Oxidative Stress and Inflammatory Diseases , 2021, International journal of molecular sciences.
[12] Hongqiao Zhang,et al. Targeting oxidative stress in disease: promise and limitations of antioxidant therapy , 2021, Nature Reviews Drug Discovery.
[13] M. Chiriacò,et al. Immunological Aspects of X-Linked Chronic Granulomatous Disease Female Carriers , 2021, Antioxidants.
[14] B. Jégou,et al. MERTK-Mediated LC3-Associated Phagocytosis (LAP) of Apoptotic Substrates in Blood-Separated Tissues: Retina, Testis, Ovarian Follicles , 2021, Cells.
[15] M. Surette,et al. Gain-of-function variants in SYK cause immune dysregulation and systemic inflammation in humans and mice , 2021, Nature Genetics.
[16] H. Phee,et al. Emerging Therapeutics for Immune Tolerance: Tolerogenic Vaccines, T cell Therapy, and IL-2 Therapy , 2021, Frontiers in Immunology.
[17] P. Saas,et al. Mini-Review: The Administration of Apoptotic Cells for Treating Rheumatoid Arthritis: Current Knowledge and Clinical Perspectives , 2021, Frontiers in Immunology.
[18] M. Shinohara,et al. Dectin-1 limits autoimmune neuroinflammation and promotes myeloid cell-astrocyte crosstalk via Card9-independent expression of Oncostatin M. , 2021, Immunity.
[19] L. Collinson,et al. The receptor DNGR-1 signals for phagosomal rupture to promote cross-presentation of dead-cell-associated antigens , 2020, Nature Immunology.
[20] E. Ballestar,et al. Tolerogenic Dendritic Cells in Autoimmunity and Inflammatory Diseases. , 2020, Trends in immunology.
[21] A. Martner,et al. NOX2-Derived Reactive Oxygen Species in Cancer , 2020, Oxidative medicine and cellular longevity.
[22] D. Wrona,et al. Membrane Dynamics and Organization of the Phagocyte NADPH Oxidase in PLB-985 Cells , 2020, Frontiers in Cell and Developmental Biology.
[23] D. Nomura,et al. Mitohormesis reprograms macrophage metabolism to enforce tolerance , 2020, Nature Metabolism.
[24] A. A. Akhiani,et al. Idelalisib Rescues Natural Killer Cells from Monocyte-Induced Immunosuppression by Inhibiting NOX2-Derived Reactive Oxygen Species , 2020, Cancer Immunology Research.
[25] P. Krammer,et al. Flow-cytometric Detection of Low-level Reactive Oxygen Species in Cell Lines and Primary Immune Cells. , 2020, Bio-protocol.
[26] A. I. Rojo,et al. On the Clinical Pharmacology of Reactive Oxygen Species , 2020, Pharmacological Reviews.
[27] E. Uribe-Querol,et al. Phagocytosis: Our Current Understanding of a Universal Biological Process , 2020, Frontiers in Immunology.
[28] Dean P. Jones,et al. Reactive oxygen species (ROS) as pleiotropic physiological signalling agents , 2020, Nature Reviews Molecular Cell Biology.
[29] Aissa Benyoucef,et al. CRISPR gene-engineered CYBBko THP-1 cell lines highlight the crucial role of NADPH-induced reactive oxygen species for regulating inflammasome activation. , 2020, The Journal of allergy and clinical immunology.
[30] P. Krammer,et al. Dectin-1 Binding to Annexins on Apoptotic Cells Induces Peripheral Immune Tolerance via NADPH Oxidase-2. , 2019, Cell reports.
[31] Shakeel U. R. Mir,et al. Scavenging reactive oxygen species selectively inhibits M2 macrophage polarization and their pro-tumorigenic function in part, via Stat3 suppression. , 2019, Free radical biology & medicine.
[32] W. Nauseef. The phagocyte NOX2 NADPH oxidase in microbial killing and cell signaling. , 2019, Current opinion in immunology.
[33] I. Dransfield,et al. Regulation of Apoptotic Cell Clearance During Resolution of Inflammation , 2019, Front. Pharmacol..
[34] T. Kuijpers,et al. Regulatory T cell features in chronic granulomatous disease , 2019, Clinical and experimental immunology.
[35] K. Krause,et al. Pharmacological characterization of the seven human NOX isoforms and their inhibitors , 2019, Redox biology.
[36] Yuan He,et al. The NLRP3 Inflammasome: An Overview of Mechanisms of Activation and Regulation , 2019, International journal of molecular sciences.
[37] G. van den Bogaart,et al. Human Monocyte-Derived Dendritic Cells Produce Millimolar Concentrations of ROS in Phagosomes Per Second , 2019, Front. Immunol..
[38] Shuai Jiang,et al. Mitochondrial electron transport chain, ROS generation and uncoupling (Review) , 2019, International journal of molecular medicine.
[39] S. Holland,et al. Dominant activating RAC2 mutation with lymphopenia, immunodeficiency, and cytoskeletal defects. , 2019, Blood.
[40] K. Ravichandran,et al. Living on the Edge: Efferocytosis at the Interface of Homeostasis and Pathology. , 2019, Immunity.
[41] M. Sáez-de-Ocariz,et al. Clinical Manifestations in Carriers of X-Linked Chronic Granulomatous Disease in Mexico. , 2019, Journal of investigational allergology & clinical immunology.
[42] T. Tsubata,et al. Essential Role of NADPH Oxidase–Dependent Production of Reactive Oxygen Species in Maintenance of Sustained B Cell Receptor Signaling and B Cell Proliferation , 2019, The Journal of Immunology.
[43] D. Green,et al. LC3-associated phagocytosis at a glance , 2019, Journal of Cell Science.
[44] M. Krönke,et al. Mitochondrial reactive oxygen species enable proinflammatory signaling through disulfide linkage of NEMO , 2019, Science Signaling.
[45] D. Green,et al. LC3-Associated Phagocytosis in Myeloid Cells Promotes Tumor Immune Tolerance , 2018, Cell.
[46] R. Yates,et al. The phagosome and redox control of antigen processing. , 2018, Free radical biology & medicine.
[47] M. Chiriacò,et al. Impaired X-CGD T cell compartment is gp91phox-NADPH oxidase independent. , 2018, Clinical immunology.
[48] K. Krause,et al. Altered Humoral Immune Responses and IgG Subtypes in NOX2-Deficient Mice and Patients: A Key Role for NOX2 in Antigen-Presenting Cells , 2018, Front. Immunol..
[49] E. Ogier-Denis,et al. Mitochondrial reactive oxygen species regulate the induction of CD8+ T cells by plasmacytoid dendritic cells , 2018, Nature Communications.
[50] S. Steinberg,et al. Tumor-Derived GM-CSF Promotes Granulocyte Immunosuppression in Mesothelioma Patients , 2018, Clinical Cancer Research.
[51] Z. Dong,et al. PKCδ-Mediated Nox2 Activation Promotes Fluid-Phase Pinocytosis of Antigens by Immature Dendritic Cells , 2018, Front. Immunol..
[52] Aaron J. Johnson,et al. Non-equivalent antigen presenting capabilities of dendritic cells and macrophages in generating brain-infiltrating CD8+ T cell responses , 2018, Nature Communications.
[53] P. Cahill,et al. Nox, Reactive Oxygen Species and Regulation of Vascular Cell Fate , 2017, Antioxidants.
[54] J. Mecsas,et al. Neutrophils to the ROScue: Mechanisms of NADPH Oxidase Activation and Bacterial Resistance , 2017, Front. Cell. Infect. Microbiol..
[55] K. Gomes,et al. Annexin A1 and specialized proresolving lipid mediators: promoting resolution as a therapeutic strategy in human inflammatory diseases , 2017, Expert opinion on therapeutic targets.
[56] A. Gennery,et al. Inflammatory and autoimmune manifestations in X-linked carriers of chronic granulomatous disease in the United Kingdom. , 2017, The Journal of allergy and clinical immunology.
[57] M. Dinauer,et al. Haploinsufficiency of NADPH Oxidase Subunit Neutrophil Cytosolic Factor 2 Is Sufficient to Accelerate Full‐Blown Lupus in NZM 2328 Mice , 2017, Arthritis & rheumatology.
[58] G. van den Bogaart,et al. Oxidized phagosomal NOX2 complex is replenished from lysosomes , 2017, Journal of Cell Science.
[59] T. Münzel,et al. Role of Protein Kinase C and Nox2-Derived Reactive Oxygen Species Formation in the Activation and Maturation of Dendritic Cells by Phorbol Ester and Lipopolysaccharide , 2017, Oxidative medicine and cellular longevity.
[60] B. Ueberheide,et al. Dectin-1 Activation on Macrophages by Galectin-9 Promotes Pancreatic Carcinoma and Peritumoral Immune-Tolerance , 2017, Nature Medicine.
[61] A. Fischer,et al. Chronic Granulomatous Disease in Patients Reaching Adulthood: A Nationwide Study in France , 2017, Clinical infectious diseases : an official publication of the Infectious Diseases Society of America.
[62] T. Yun,et al. The Importance of Dendritic Cells in Maintaining Immune Tolerance , 2017, The Journal of Immunology.
[63] B. Kalyanaraman,et al. Recent developments in detection of superoxide radical anion and hydrogen peroxide: Opportunities, challenges, and implications in redox signaling. , 2017, Archives of biochemistry and biophysics.
[64] Michael R. Elliott,et al. Efferocytosis Signaling in the Regulation of Macrophage Inflammatory Responses , 2017, The Journal of Immunology.
[65] Edward Ryder,et al. Genome-wide in vivo screen identifies novel host regulators of metastatic colonization , 2017, Nature.
[66] P. Newsholme,et al. Molecular mechanisms of ROS production and oxidative stress in diabetes. , 2016, The Biochemical journal.
[67] A. Perl,et al. Reactive oxygen species induce virus-independent MAVS oligomerization in systemic lupus erythematosus , 2016, Science Signaling.
[68] R. Sitia,et al. AQP8 transports NOX2‐generated H2O2 across the plasma membrane to promote signaling in B cells , 2016, Journal of leukocyte biology.
[69] M. Ikura,et al. An interaction between Scribble and the NADPH oxidase complex controls M1 macrophage polarization and function , 2016, Nature Cell Biology.
[70] M. Gougerot-Pocidalo,et al. Priming of the neutrophil respiratory burst: role in host defense and inflammation , 2016, Immunological reviews.
[71] P. Saas,et al. Concise Review: Apoptotic Cell‐Based Therapies–Rationale, Preclinical Results and Future Clinical Developments , 2016, Stem cells.
[72] H. Tse,et al. NADPH Oxidase–Derived Superoxide Provides a Third Signal for CD4 T Cell Effector Responses , 2016, The Journal of Immunology.
[73] D. Green,et al. Noncanonical autophagy inhibits the autoinflammatory, lupus-like response to dying cells , 2016, Nature.
[74] B. Segal,et al. NOX2-dependent regulation of inflammation. , 2016, Clinical science.
[75] M. Dinauer,et al. Hyper‐responsive Toll‐like receptor 7 and 9 activation in NADPH oxidase‐deficient B lymphoblasts , 2015, Immunology.
[76] Harald H. H. W. Schmidt,et al. Reactive Oxygen-Related Diseases: Therapeutic Targets and Emerging Clinical Indications , 2015, Antioxidants & redox signaling.
[77] Aleksey V. Belikov,et al. T cells and reactive oxygen species , 2015, Journal of Biomedical Science.
[78] K. Ravichandran,et al. Phagocytosis of apoptotic cells in homeostasis , 2015, Nature Immunology.
[79] H. Schmidt,et al. Evolution of NADPH Oxidase Inhibitors: Selectivity and Mechanisms for Target Engagement. , 2015, Antioxidants & redox signaling.
[80] C. Davies,et al. Discovery of GSK2795039, a Novel Small Molecule NADPH Oxidase 2 Inhibitor. , 2015, Antioxidants & redox signaling.
[81] D. Green,et al. Molecular characterization of LC3-associated phagocytosis reveals distinct roles for Rubicon, NOX2 and autophagy proteins , 2015, Nature Cell Biology.
[82] P. Krammer,et al. The Tolerogenic Function of Annexins on Apoptotic Cells Is Mediated by the Annexin Core Domain , 2015, The Journal of Immunology.
[83] M. Geiszt,et al. Reactive oxygen species‐mediated bacterial killing by B lymphocytes , 2015, Journal of leukocyte biology.
[84] S. Holland,et al. Common severe infections in chronic granulomatous disease. , 2015, Clinical infectious diseases : an official publication of the Infectious Diseases Society of America.
[85] R. Lahesmaa,et al. Reactive oxygen species deficiency induces autoimmunity with type 1 interferon signature. , 2014, Antioxidants & redox signaling.
[86] S. Batra,et al. NADPH oxidases: an overview from structure to innate immunity-associated pathologies , 2014, Cellular and Molecular Immunology.
[87] A. Fischer,et al. Inflammatory manifestations in a single-center cohort of patients with chronic granulomatous disease. , 2014, The Journal of allergy and clinical immunology.
[88] W. Xu,et al. Potential role of NADPH oxidase in pathogenesis of pancreatitis. , 2014, World journal of gastrointestinal pathophysiology.
[89] M. Perretti,et al. Resolution of inflammation: targeting GPCRs that interact with lipids and peptides , 2014, Drug discovery today.
[90] Aleksey V. Belikov,et al. TCR-triggered extracellular superoxide production is not required for T-cell activation , 2014, Cell Communication and Signaling.
[91] K. Krause,et al. New insights on NOX enzymes in the central nervous system. , 2014, Antioxidants & redox signaling.
[92] F. Jirik,et al. NADPH Oxidase Modifies Patterns of MHC Class II–Restricted Epitopic Repertoires through Redox Control of Antigen Processing , 2014, The Journal of Immunology.
[93] N. Chandel,et al. ROS Function in Redox Signaling and Oxidative Stress , 2014, Current Biology.
[94] L. Looger,et al. Allelic heterogeneity in NCF2 associated with systemic lupus erythematosus (SLE) susceptibility across four ethnic populations. , 2014, Human molecular genetics.
[95] V. Lukacs-Kornek,et al. Self-Antigen Presentation by Dendritic Cells in Autoimmunity , 2014, Front. Immunol..
[96] V. Gladyshev. The free radical theory of aging is dead. Long live the damage theory! , 2014, Antioxidants & redox signaling.
[97] Simon C Watkins,et al. Mitochondrial Reactive Oxygen Species Induces NLRP3-Dependent Lysosomal Damage and Inflammasome Activation , 2013, The Journal of Immunology.
[98] Bihui Huang,et al. Mucus Enhances Gut Homeostasis and Oral Tolerance by Delivering Immunoregulatory Signals , 2013, Science.
[99] J. Melendez,et al. FcγR-driven Release of IL-6 by Macrophages Requires NOX2-dependent Production of Reactive Oxygen Species , 2013, The Journal of Biological Chemistry.
[100] P. Krammer,et al. Mitochondria as Oxidative Signaling Organelles in T-cell Activation: Physiological Role and Pathological Implications , 2013, Archivum Immunologiae et Therapiae Experimentalis.
[101] A. Orr,et al. Sites of reactive oxygen species generation by mitochondria oxidizing different substrates☆ , 2013, Redox biology.
[102] P. Krammer,et al. Annexin A1 on the Surface of Early Apoptotic Cells Suppresses CD8+ T Cell Immunity , 2013, PloS one.
[103] T. Hohl,et al. Monocyte- and Macrophage-Targeted NADPH Oxidase Mediates Antifungal Host Defense and Regulation of Acute Inflammation in Mice , 2013, The Journal of Immunology.
[104] Lieping Chen,et al. Molecular mechanisms of T cell co-stimulation and co-inhibition , 2013, Nature Reviews Immunology.
[105] Philip A. Kramer,et al. Methods for defining distinct bioenergetic profiles in platelets, lymphocytes, monocytes, and neutrophils, and the oxidative burst from human blood , 2013, Laboratory Investigation.
[106] J. Licht,et al. Mitochondria are required for antigen-specific T cell activation through reactive oxygen species signaling. , 2013, Immunity.
[107] A. Kettle,et al. Redox reactions and microbial killing in the neutrophil phagosome. , 2013, Antioxidants & redox signaling.
[108] J. Aloor,et al. CD11b/CD18 (Mac-1) Is a Novel Surface Receptor for Extracellular Double-Stranded RNA To Mediate Cellular Inflammatory Responses , 2013, The Journal of Immunology.
[109] J. Kwon,et al. Decreased STAT5 phosphorylation and GATA‐3 expression in NOX2‐deficient T cells: Role in T helper development , 2012, European journal of immunology.
[110] P. Grudnik,et al. T cell activation is driven by an ADP-dependent glucokinase linking enhanced glycolysis with mitochondrial reactive oxygen species generation. , 2012, Cell reports.
[111] K. Krause,et al. Detection of reactive oxygen species derived from the family of NOX NADPH oxidases. , 2012, Free radical biology & medicine.
[112] A. DeFranco,et al. Prolonged Production of Reactive Oxygen Species in Response to B Cell Receptor Stimulation Promotes B Cell Activation and Proliferation , 2012, The Journal of Immunology.
[113] N. Chandel,et al. Physiological roles of mitochondrial reactive oxygen species. , 2012, Molecular cell.
[114] P. Taylor,et al. Anti-inflammatory activity of IgG1 mediated by Fc galactosylation and association of FcγRIIB and dectin-1 , 2012, Nature Medicine.
[115] D. Underhill,et al. Dectin-1-triggered Recruitment of Light Chain 3 Protein to Phagosomes Facilitates Major Histocompatibility Complex Class II Presentation of Fungal-derived Antigens* , 2012, The Journal of Biological Chemistry.
[116] J. Rathmell,et al. Metabolic pathways in T cell fate and function. , 2012, Trends in immunology.
[117] R. Yates,et al. Phagosomal proteolysis in dendritic cells is modulated by NADPH oxidase in a pH‐independent manner , 2012, The EMBO journal.
[118] S. Honda,et al. Identification of phosphatidylserine as a ligand for the CD300a immunoreceptor. , 2012, Biochemical and biophysical research communications.
[119] Omer Kalayci,et al. Oxidative Stress and Antioxidant Defense , 2012, The World Allergy Organization journal.
[120] Yongge Zhao,et al. NADPH Oxidase-2 Derived ROS Dictates Murine DC Cytokine-Mediated Cell Fate Decisions during CD4 T Helper-Cell Commitment , 2011, PloS one.
[121] A. Syvänen,et al. Association of NCF2, IKZF1, IRF8, IFIH1, and TYK2 with Systemic Lupus Erythematosus , 2011, PLoS genetics.
[122] M. Cathcart,et al. Protein kinase Cδ is a critical component of Dectin‐1 signaling in primary human monocytes , 2011, Journal of leukocyte biology.
[123] R. Holmdahl,et al. NOX2 complex-derived ROS as immune regulators. , 2011, Antioxidants & redox signaling.
[124] T. Finkel,et al. Signal transduction by reactive oxygen species , 2011, The Journal of cell biology.
[125] G. Krishnaswamy,et al. Chronic granulomatous disease: a review of the infectious and inflammatory complications , 2011, Clinical and molecular allergy : CMA.
[126] H. Erdjument-Bromage,et al. TLR signaling augments macrophage bactericidal activity through mitochondrial ROS , 2011, Nature.
[127] Jun Ma,et al. Activation of the innate immune receptor Dectin-1 upon formation of a “phagocytic synapse” , 2011, Nature.
[128] Daniel L. Kastner,et al. Mitochondrial reactive oxygen species promote production of proinflammatory cytokines and are elevated in TNFR1-associated periodic syndrome (TRAPS) , 2011, The Journal of experimental medicine.
[129] C. Lowell. Src-family and Syk kinases in activating and inhibitory pathways in innate immune cells: signaling cross talk. , 2011, Cold Spring Harbor perspectives in biology.
[130] A. Shah,et al. The E-loop Is Involved in Hydrogen Peroxide Formation by the NADPH Oxidase Nox4* , 2011, The Journal of Biological Chemistry.
[131] J. Tschopp,et al. A role for mitochondria in NLRP3 inflammasome activation , 2011, Nature.
[132] Terri C. Thayer,et al. NADPH Oxidase Deficiency Regulates Th Lineage Commitment and Modulates Autoimmunity , 2010, The Journal of Immunology.
[133] R. Holmdahl,et al. Induction of regulatory T cells by macrophages is dependent on production of reactive oxygen species , 2010, Proceedings of the National Academy of Sciences.
[134] M. Perretti,et al. Therapeutic anti-inflammatory potential of formyl-peptide receptor agonists. , 2010, Pharmacology & therapeutics.
[135] J. Curtsinger,et al. Inflammatory cytokines as a third signal for T cell activation. , 2010, Current opinion in immunology.
[136] Regina M. Krohn,et al. NADPH oxidase activity controls phagosomal proteolysis in macrophages through modulation of the lumenal redox environment of phagosomes , 2010, Proceedings of the National Academy of Sciences.
[137] C. Klemke,et al. Mitochondrial Reactive Oxygen Species Control T Cell Activation by Regulating IL-2 and IL-4 Expression: Mechanism of Ciprofloxacin-Mediated Immunosuppression , 2010, The Journal of Immunology.
[138] M. Sporn,et al. NADPH Oxidase Limits Innate Immune Responses in the Lungs in Mice , 2010, PloS one.
[139] E. Clark,et al. BCR‐induced superoxide negatively regulates B‐cell proliferation and T‐cell‐independent type 2 Ab responses , 2009, European journal of immunology.
[140] K. Griendling,et al. Nox proteins in signal transduction. , 2009, Free radical biology & medicine.
[141] K. Krause,et al. Small-molecule NOX inhibitors: ROS-generating NADPH oxidases as therapeutic targets. , 2009, Antioxidants & redox signaling.
[142] Peter Tontonoz,et al. Apoptotic cells promote their own clearance and immune tolerance through activation of the nuclear receptor LXR. , 2009, Immunity.
[143] S. Gringhuis,et al. Signalling through C-type lectin receptors: shaping immune responses , 2009, Nature Reviews Immunology.
[144] R. Holmdahl,et al. The protective role of ROS in autoimmune disease. , 2009, Trends in immunology.
[145] M. Gougerot-Pocidalo,et al. p47phox, the phagocyte NADPH oxidase/NOX2 organizer: structure, phosphorylation and implication in diseases , 2009, Experimental & Molecular Medicine.
[146] N. Hacohen,et al. The small GTPase Rac2 controls phagosomal alkalinization and antigen crosspresentation selectively in CD8(+) dendritic cells. , 2009, Immunity.
[147] S. Akira,et al. Ncf1 Provides a Reactive Oxygen Species-Independent Negative Feedback Regulation of TLR9-Induced IL-12p70 in Murine Dendritic Cells1 , 2009, The Journal of Immunology.
[148] N. Gow,et al. Pattern recognition: recent insights from Dectin-1 , 2009, Current opinion in immunology.
[149] K. Ravichandran,et al. Phagosome maturation: going through the acid test , 2008, Nature Reviews Molecular Cell Biology.
[150] K. Krause,et al. Hyperinflammation in chronic granulomatous disease and anti-inflammatory role of the phagocyte NADPH oxidase , 2008, Seminars in Immunopathology.
[151] Sven Burgdorf,et al. Endocytosis mechanisms and the cell biology of antigen presentation. , 2008, Current opinion in immunology.
[152] R. Tisch,et al. MerTK is required for apoptotic cell–induced T cell tolerance , 2008, The Journal of experimental medicine.
[153] Jacques Neefjes,et al. MHC class II molecules on the move for successful antigen presentation , 2008, The EMBO journal.
[154] K. Krause,et al. Branched fungal β‐glucan causes hyperinflammation and necrosis in phagocyte NADPH oxidase‐deficient mice , 2007, The Journal of pathology.
[155] Z. Berneman,et al. Balancing between immunity and tolerance: an interplay between dendritic cells, regulatory T cells, and effector T cells , 2007, Journal of leukocyte biology.
[156] M. Hoth,et al. T cell activation requires mitochondrial translocation to the immunological synapse , 2007, Proceedings of the National Academy of Sciences.
[157] F. Robert,et al. Nuclear receptor ERR alpha and coactivator PGC-1 beta are effectors of IFN-gamma-induced host defense. , 2007, Genes & development.
[158] A. Thomson,et al. Tolerogenic dendritic cells and the quest for transplant tolerance , 2007, Nature Reviews Immunology.
[159] Marc Parmentier,et al. Formyl peptide receptors: a promiscuous subfamily of G protein-coupled receptors controlling immune responses. , 2006, Cytokine & growth factor reviews.
[160] G. Raposo,et al. NOX2 Controls Phagosomal pH to Regulate Antigen Processing during Crosspresentation by Dendritic Cells , 2006, Cell.
[161] Hiroki Tanaka,et al. The role of nicotinamide adenine dinucleotide phosphate oxidase-derived reactive oxygen species in the acquisition of metastatic ability of tumor cells. , 2006, The American journal of pathology.
[162] E. Ogier-Denis,et al. Interleukin-8-induced Priming of Neutrophil Oxidative Burst Requires Sequential Recruitment of NADPH Oxidase Components into Lipid Rafts* , 2005, Journal of Biological Chemistry.
[163] D. Underhill,et al. Dectin-1 activates Syk tyrosine kinase in a dynamic subset of macrophages for reactive oxygen production. , 2005, Blood.
[164] A. Rudensky,et al. The lysosomal cysteine proteases in MHC class II antigen presentation , 2005, Immunological reviews.
[165] J. Boucher,et al. Dual Oxidase-2 Has an Intrinsic Ca2+-dependent H2O2-generating Activity* , 2005, Journal of Biological Chemistry.
[166] K. Rock,et al. Both Dendritic Cells and Macrophages Can Stimulate Naive CD8 T Cells In Vivo to Proliferate, Develop Effector Function, and Differentiate into Memory Cells1 , 2005, The Journal of Immunology.
[167] Henry C. Chang,et al. Differential Lysosomal Proteolysis in Antigen-Presenting Cells Determines Antigen Fate , 2005, Science.
[168] A. Pastorino,et al. Clinical and laboratory aspects of chronic granulomatous disease in description of eighteen patients , 2005, Pediatric allergy and immunology : official publication of the European Society of Pediatric Allergy and Immunology.
[169] L. Notarangelo,et al. Toll Receptor-Mediated Regulation of NADPH Oxidase in Human Dendritic Cells1 , 2004, The Journal of Immunology.
[170] J. Kwon,et al. T cells express a phagocyte-type NADPH oxidase that is activated after T cell receptor stimulation , 2004, Nature Immunology.
[171] J. Curtsinger,et al. Signal 3 Determines Tolerance versus Full Activation of Naive CD8 T Cells , 2003, The Journal of experimental medicine.
[172] 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.
[173] A. Rudensky,et al. Differential Regulation of Cathepsin S and Cathepsin L in Interferon γ–treated Macrophages , 2003, Journal of Experimental Medicine.
[174] Michel C. Nussenzweig,et al. Efficient Targeting of Protein Antigen to the Dendritic Cell Receptor DEC-205 in the Steady State Leads to Antigen Presentation on Major Histocompatibility Complex Class I Products and Peripheral CD8+ T Cell Tolerance , 2002, The Journal of experimental medicine.
[175] A. Jawad,et al. Diminished T cell numbers in patients with chronic granulomatous disease. , 2002, Clinical immunology.
[176] M. Gougerot-Pocidalo,et al. Phosphorylation of p47phox sites by PKC alpha, beta II, delta, and zeta: effect on binding to p22phox and on NADPH oxidase activation. , 2002, Biochemistry.
[177] T. Nishi,et al. The vacuolar (H+)-ATPases — nature's most versatile proton pumps , 2002, Nature Reviews Molecular Cell Biology.
[178] N. Chandel,et al. Reactive Oxygen Species Are Downstream Products of TRAF-mediated Signal Transduction* , 2001, The Journal of Biological Chemistry.
[179] Y. Shi,et al. Apoptosis: the quiet death silences the immune system. , 2001, Pharmacology & therapeutics.
[180] J. El Benna,et al. Protein Kinase C ζ Phosphorylates a Subset of Selective Sites of the NADPH Oxidase Component p47phox and Participates in Formyl Peptide-Mediated Neutrophil Respiratory Burst , 2001, The Journal of Immunology.
[181] Randall L. Kincaid,et al. Phosphorylation of Syk Activation Loop Tyrosines Is Essential for Syk Function , 2000, The Journal of Biological Chemistry.
[182] N. Holbrook,et al. Oxidants, oxidative stress and the biology of ageing , 2000, Nature.
[183] A. Shiose,et al. Arachidonic Acid and Phosphorylation Synergistically Induce a Conformational Change of p47 phox to Activate the Phagocyte NADPH Oxidase* , 2000, The Journal of Biological Chemistry.
[184] R. Steinman,et al. The Induction of Tolerance by Dendritic Cells That Have Captured Apoptotic Cells , 2000, The Journal of experimental medicine.
[185] P. Cresswell,et al. Enzymatic reduction of disulfide bonds in lysosomes: characterization of a gamma-interferon-inducible lysosomal thiol reductase (GILT). , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[186] P. Kalinski,et al. T-cell priming by type-1 and type-2 polarized dendritic cells: the concept of a third signal. , 1999, Immunology today.
[187] I. Maridonneau-Parini,et al. The Mannose Receptor Mediates Uptake of Pathogenic and Nonpathogenic Mycobacteria and Bypasses Bactericidal Responses in Human Macrophages , 1999, Infection and Immunity.
[188] J. Miller,et al. Induction of peripheral CD8+ T‐cell tolerance by cross‐presentation of self antigens , 1998, Immunological reviews.
[189] Gareth Griffiths,et al. Lysosomal Enzyme Trafficking between Phagosomes, Endosomes, and Lysosomes in J774 Macrophages , 1998, The Journal of Biological Chemistry.
[190] C. Kurts,et al. Class I–restricted Cross-Presentation of Exogenous Self-Antigens Leads to Deletion of Autoreactive CD8+ T Cells , 1997, The Journal of experimental medicine.
[191] B. Babior,et al. Activation of the leukocyte NADPH oxidase subunit p47phox by protein kinase C. A phosphorylation-dependent change in the conformation of the C-terminal end of p47phox. , 1997, Biochemistry.
[192] S. P. Sidorenko,et al. Phospholipase C-gamma1 interacts with conserved phosphotyrosyl residues in the linker region of Syk and is a substrate for Syk , 1996, Molecular and cellular biology.
[193] S. Weiss,et al. Proton stoichiometry associated with human neutrophil respiratory-burst reactions. , 1984, The Journal of biological chemistry.
[194] A. Segal,et al. Purification of cytochrome b-245 from human neutrophils. , 1984, The Biochemical journal.
[195] M. Geisow,et al. The respiratory burst of phagocytic cells is associated with a rise in vacuolar pH , 1981, Nature.
[196] A. Segal,et al. Novel cytochrome b system in phagocytic vacuoles of human granulocytes , 1978, Nature.
[197] S. Srivastava,et al. Glutathione metabolism of the red cells. Effect of glutathione reductase deficiency on the stimulation of hexose monophosphate shunt under oxidative stress. , 1970, Biochimica et biophysica acta.
[198] I. Fridovich,et al. The utility of superoxide dismutase in studying free radical reactions. II. The mechanism of the mediation of cytochrome c reduction by a variety of electron carriers. , 1970, The Journal of biological chemistry.
[199] R. Good,et al. A fatal granulomatosus of childhood: the clinical study of a new syndrome. , 1957, Minnesota medicine.
[200] D. Harman. Aging: a theory based on free radical and radiation chemistry. , 1956, Journal of gerontology.
[201] D. W. May. CATALASE, A NEW ENZYM OF GENERAL OCCURRENCE. , 1901, Science.
[202] S. Holland,et al. X‐linked carriers of chronic granulomatous disease: Illness, lyonization, and stability , 2018, The Journal of allergy and clinical immunology.
[203] R. Holmdahl,et al. Pharmacological Potential of NOX2 Agonists in Inflammatory Conditions. , 2014, Antioxidants & redox signaling.
[204] J. Tschopp,et al. The Inflammasomes , 2010, Cell.
[205] K. Krause,et al. The NOX family of ROS-generating NADPH oxidases: physiology and pathophysiology. , 2007, Physiological reviews.
[206] Jens Holmberg,et al. Positional identification of Ncf1 as a gene that regulates arthritis severity in rats , 2003, Nature Genetics.
[207] C. Duve,et al. Functions of lysosomes. , 1966, Annual review of physiology.