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D. Fearon, R. Locksley (1996)
The Instructive Role of Innate Immunity in the Acquired Immune ResponseScience, 272
(2001)
Role of Toll-like receptors in the control of adaptive immune responses
H. Ogata, I. Su, K. Miyake, Y. Nagai, S. Akashi, Ingrid Mecklenbräuker, K. Rajewsky, M. Kimoto, A. Tarakhovsky (2000)
The Toll-like Receptor Protein Rp105 Regulates Lipopolysaccharide Signaling in B CellsThe Journal of Experimental Medicine, 192
O. Takeuchi, A. Kaufmann, K. Grote, T. Kawai, K. Hoshino, M. Morr, P. Mühlradt, S. Akira (2000)
Cutting Edge: Preferentially the R-Stereoisomer of the Mycoplasmal Lipopeptide Macrophage-Activating Lipopeptide-2 Activates Immune Cells Through a Toll-Like Receptor 2- and MyD88-Dependent Signaling Pathway1The Journal of Immunology, 164
K. Moore, L. Andersson, R. Ingalls, B. Monks, Rui Li, M. Arnaout, D. Golenbock, M. Freeman (2000)
Divergent Response to LPS and Bacteria in CD14-Deficient Murine Macrophages1The Journal of Immunology, 165
U. Holmskov (2000)
Collectins and collectin receptors in innate immunityAPMIS, 108
L. Alexopoulou, Agnieszka Holt, R. Medzhitov, R. Flavell (2001)
Recognition of double-stranded RNA and activation of NF-κB by Toll-like receptor 3Nature, 413
B. Lemaître, J. Reichhart, J. Hoffmann (1997)
Drosophila host defense: differential induction of antimicrobial peptide genes after infection by various classes of microorganisms.Proceedings of the National Academy of Sciences of the United States of America, 94 26
J. Correia, K. Soldau, U. Christen, P. Tobias, R. Ulevitch (2001)
Lipopolysaccharide Is in Close Proximity to Each of the Proteins in Its Membrane Receptor ComplexThe Journal of Biological Chemistry, 276
Yoshihiro Miura, R. Shimazu, K. Miyake, S. Akashi, H. Ogata, Y. Yamashita, Yutaka Narisawa, M. Kimoto (1998)
RP105 is associated with MD-1 and transmits an activation signal in human B cells.Blood, 92 8
S. Ghosh, M. May, E. Kopp (1998)
NF-kappa B and Rel proteins: evolutionarily conserved mediators of immune responses.Annual review of immunology, 16
M. Hirschfeld, J. Weis, V. Toshchakov, C. Salkowski, M. Cody, D. Ward, N. Qureshi, S. Michalek, S. Vogel (2001)
Signaling by Toll-Like Receptor 2 and 4 Agonists Results in Differential Gene Expression in Murine MacrophagesInfection and Immunity, 69
Y. Ogura, D. Bonen, N. Inohara, D. Nicolae, Felicia Chen, Richard Ramos, Heidi Britton, Thomas Moran, Reda Karaliuskas, R. Duerr, J. Achkar, S. Brant, T. Bayless, B. Kirschner, S. Hanauer, G. Núñez, Judy Cho (2001)
A frameshift mutation in NOD2 associated with susceptibility to Crohn's diseaseNature, 411
A. Ozinsky, D. Underhill, J. Fontenot, A. Hajjar, Kelly Smith, Christopher Wilson, Lea Schroeder, A. Aderem (2000)
The repertoire for pattern recognition of pathogens by the innate immune system is defined by cooperation between toll-like receptors.Proceedings of the National Academy of Sciences of the United States of America, 97 25
D. Underhill, A. Ozinsky, Kelly Smith, A. Aderem (1999)
Toll-like receptor-2 mediates mycobacteria-induced proinflammatory signaling in macrophages.Proceedings of the National Academy of Sciences of the United States of America, 96 25
R. Shimazu, S. Akashi, H. Ogata, Y. Nagai, K. Fukudome, K. Miyake, M. Kimoto (1999)
MD-2, a Molecule that Confers Lipopolysaccharide Responsiveness on Toll-like Receptor 4The Journal of Experimental Medicine, 189
T. Horng, G. Barton, R. Medzhitov (2001)
TIRAP: an adapter molecule in the Toll signaling pathwayNature Immunology, 2
A. Hajjar, D. O'Mahony, A. Ozinsky, D. Underhill, A. Aderem, S. Klebanoff, Christopher Wilson (2001)
Cutting Edge: Functional Interactions Between Toll-Like Receptor (TLR) 2 and TLR1 or TLR6 in Response to Phenol-Soluble Modulin1The Journal of Immunology, 166
E. Lien, T. Means, H. Heine, A. Yoshimura, S. Kusumoto, K. Fukase, M. Fenton, M. Oikawa, N. Qureshi, B. Monks, R. Finberg, R. Ingalls, D. Golenbock (2000)
Toll-like receptor 4 imparts ligand-specific recognition of bacterial lipopolysaccharide.The Journal of clinical investigation, 105 4
M. Dushay, B. Åsling, D. Hultmark (1996)
Origins of immunity: Relish, a compound Rel-like gene in the antibacterial defense of Drosophila.Proceedings of the National Academy of Sciences of the United States of America, 93 19
M. Schnare, Agnieszka Holt, K. Takeda, S. Akira, R. Medzhitov (2000)
Recognition of CpG DNA is mediated by signaling pathways dependent on the adaptor protein MyD88Current Biology, 10
Christian Thomas, Yongmei Li, T. Kodama, Hiroshi Suzuki, S. Silverstein, J. Khoury (2000)
Protection from Lethal Gram-Positive Infection by Macrophage Scavenger Receptor–Dependent PhagocytosisThe Journal of Experimental Medicine, 191
N. Inohara, Y. Ogura, Felicia Chen, A. Muto, G. Núñez (2001)
Human Nod1 Confers Responsiveness to Bacterial Lipopolysaccharides*The Journal of Biological Chemistry, 276
T. Kaisho, O. Takeuchi, T. Kawai, K. Hoshino, S. Akira (2001)
Endotoxin-Induced Maturation of MyD88-Deficient Dendritic Cells1The Journal of Immunology, 166
K. Hoshino, O. Takeuchi, T. Kawai, H. Sanjo, T. Ogawa, Y. Takeda, K. Takeda, S. Akira (1999)
Cutting edge: Toll-like receptor 4 (TLR4)-deficient mice are hyporesponsive to lipopolysaccharide: evidence for TLR4 as the Lps gene product.Journal of immunology, 162 7
C. Janeway (1989)
Approaching the asymptote? Evolution and revolution in immunology.Cold Spring Harbor symposia on quantitative biology, 54 Pt 1
M. Campos, I. Almeida, O. Takeuchi, S. Akira, Eneida Valente, D. Procópio, L. Travassos, Jason Smith, D. Golenbock, R. Gazzinelli (2001)
Activation of Toll-Like Receptor-2 by Glycosylphosphatidylinositol Anchors from a Protozoan Parasite1The Journal of Immunology, 167
J. Banchereau, R. Steinman (1998)
Dendritic cells and the control of immunityNature, 392
K. Ohashi, V. Burkart, S. Flohé, H. Kolb (2000)
Cutting Edge: Heat Shock Protein 60 Is a Putative Endogenous Ligand of the Toll-Like Receptor-4 Complex1The Journal of Immunology, 164
A. Pearson (1996)
Scavenger receptors in innate immunity.Current opinion in immunology, 8 1
J. Hugot, M. Chamaillard, H. Zouali, S. Lesage, J. Cézard, J. Belaiche, S. Almér, C. Tysk, C. O'Morain, M. Gassull, V. Binder, Y. Finkel, A. Cortot, R. Modigliani, P. Laurent-Puig, C. Gower-Rousseau, J. Macry, J. Colombel, M. Sahbatou, G. Thomas (2001)
Association of NOD2 leucine-rich repeat variants with susceptibility to Crohn's diseaseNature, 411
Arthur Krieg (2000)
The role of CpG motifs in innate immunity.Current opinion in immunology, 12 1
I. Kushner (1990)
C-reactive protein and the acute-phase response.Hospital practice, 25 3A
H. Brightbill, D. Libraty, S. Krutzik, Ruey-Bing Yang, J. Belisle, Joshua Bleharski, M. Maitland, M. Norgard, S. Plevy, S. Smale, P. Brennan, B. Bloom, B. Bloom, P. Godowski, R. Modlin (1999)
Host defense mechanisms triggered by microbial lipoproteins through toll-like receptors.Science, 285 5428
C. Thompson (1995)
New insights into V(D)J recombination and its role in the evolution of the immune system.Immunity, 3 5
I. Fraser, H. Koziel, R. Ezekowitz (1998)
The serum mannose-binding protein and the macrophage mannose receptor are pattern recognition molecules that link innate and adaptive immunity.Seminars in immunology, 10 5
N. Silverman, R. Zhou, Svenja Stöven, Niranjan Pandey, Niranjan Pandey, D. Hultmark, T. Maniatis (2000)
A Drosophila IkappaB kinase complex required for Relish cleavage and antibacterial immunity.Genes & development, 14 19
T. Kawai, O. Adachi, T. Ogawa, K. Takeda, S. Akira (1999)
Unresponsiveness of MyD88-deficient mice to endotoxin.Immunity, 11 1
C. Hashimoto, K. Hudson, K. Anderson (1988)
The Toll gene of drosophila, required for dorsal-ventral embryonic polarity, appears to encode a transmembrane proteinCell, 52
J. Epstein, Q. Eichbaum, S. Sheriff, R. Ezekowitz (1996)
The collectins in innate immunity.Current opinion in immunology, 8 1
(2000)
The role of CpG motifs 1 Feb 2002 10:13 AR AR152-08.tex AR152-08.SGM LaTeX2e(2001/05/10)P1: GJC 216 JANEWAY ¥ MEDZHITOV in innate immunity.Curr
E. Kurt-Jones, L. Popova, Laura Kwinn, L. Haynes, L. Jones, R. Tripp, E. Walsh, M. Freeman, D. Golenbock, L. Anderson, R. Finberg (2000)
Pattern recognition receptors TLR4 and CD14 mediate response to respiratory syncytial virusNature Immunology, 1
M. Clemens, A. Elia (1997)
The double-stranded RNA-dependent protein kinase PKR: structure and function.Journal of interferon & cytokine research : the official journal of the International Society for Interferon and Cytokine Research, 17 9
Y. Ip, M. Reach, Y. Engstrom, L. Kadalayil, H. Cai, S. González-Crespo, K. Tatei, M. Levine (1993)
Dif, a dorsal-related gene that mediates an immune response in DrosophilaCell, 75
D. Underhill, A. Ozinsky, A. Hajjar, Anne Stevens, Christopher Wilson, M. Bassetti, A. Aderem (1999)
The Toll-like receptor 2 is recruited to macrophage phagosomes and discriminates between pathogensNature, 401
Xiangjun Meng, B. Khanuja, Y. Ip (1999)
Toll receptor-mediated Drosophila immune response requires Dif, an NF-κB factorGenes & Development, 13
H. Wesche, W. Henzel, W. Shillinglaw, Shyun Li, Z. Cao (1997)
MyD88: an adapter that recruits IRAK to the IL-1 receptor complex.Immunity, 7 6
Michael Williams, Antony Rodriguez, D. Kimbrell, E. Eldon (1997)
The 18‐wheeler mutation reveals complex antibacterial gene regulation in Drosophila host defenseThe EMBO Journal, 16
S. Yamaoka, G. Courtois, C. Bessia, S. Whiteside, R. Weil, F. Agou, H. Kirk, R. Kay, A. Israël (1998)
Complementation cloning of NEMO, a component of the IkappaB kinase complex essential for NF-kappaB activation.Cell, 93 7
R. Schwandner, R. Dziarski, H. Wesche, M. Rothe, C. Kirschning (1999)
Peptidoglycan- and Lipoteichoic Acid-induced Cell Activation Is Mediated by Toll-like Receptor 2*The Journal of Biological Chemistry, 274
R. Schwalbe, Björn Dahlbäck, John Coe, G. Nelsestuen (1992)
Pentraxin family of proteins interact specifically with phosphorylcholine and/or phosphorylethanolamine.Biochemistry, 31 20
B. Williams (1999)
PKR; a sentinel kinase for cellular stressOncogene, 18
R. Vabulas, P. Ahmad-Nejad, C. Costa, T. Miethke, C. Kirschning, H. Häcker, H. Wagner (2001)
Endocytosed HSP60s Use Toll-like Receptor 2 (TLR2) and TLR4 to Activate the Toll/Interleukin-1 Receptor Signaling Pathway in Innate Immune Cells*The Journal of Biological Chemistry, 276
A. Schromm, E. Lien, P. Henneke, Jesse Chow, A. Yoshimura, H. Heine, E. Latz, B. Monks, D. Schwartz, K. Miyake, D. Golenbock (2001)
Molecular Genetic Analysis of an Endotoxin Nonresponder Mutant Cell LineThe Journal of Experimental Medicine, 194
A. Poltorak, P. Ricciardi-Castagnoli, S. Citterio, B. Beutler (2000)
Physical contact between lipopolysaccharide and toll-like receptor 4 revealed by genetic complementation.Proceedings of the National Academy of Sciences of the United States of America, 97 5
Kensuke Miyake, R. Shimazu, Jun Kondo, T. Niki, S. Akashi, H. Ogata, Yoshio Yamashita, Yoshihiro Miura, Masao Kimoto (1998)
Mouse MD-1, a molecule that is physically associated with RP105 and positively regulates its expression.Journal of immunology, 161 3
J. Hoffmann, F. Kafatos, C. Janeway, R. Ezekowitz (1999)
Phylogenetic perspectives in innate immunity.Science, 284 5418
A. Haziot, E. Ferrero, Frank Koentgen, N. Hijiya, S. Yamamoto, J. Silver, C. Stewart, S. Goyert (1996)
Resistance to endotoxin shock and reduced dissemination of gram-negative bacteria in CD14-deficient mice.Immunity, 4 4
R. Medzhitov, P. Preston-Hurlburt, E. Kopp, Andrew Stadlen, Chao-qun Chen, S. Ghosh, C. Janeway (1998)
MyD88 is an adaptor protein in the hToll/IL-1 receptor family signaling pathways.Molecular cell, 2 2
Kensuke Miyake, Yoshio Yamashita, Masato Ogata, T. Sudo, Masao Kimoto (1995)
RP105, a novel B cell surface molecule implicated in B cell activation, is a member of the leucine-rich repeat protein family.Journal of immunology, 154 7
R. Medzhitov, C. Janeway (1997)
Innate immunity: impact on the adaptive immune response.Current opinion in immunology, 9 1
E. Kopp, R. Medzhitov (1999)
The Toll-receptor family and control of innate immunity.Current opinion in immunology, 11 1
Kathryn Anderson (2000)
Toll signaling pathways in the innate immune response.Current opinion in immunology, 12 1
R. Medzhitov, P. Preston-Hurlburt, C. Janeway (1997)
A human homologue of the Drosophila Toll protein signals activation of adaptive immunityNature, 388
L. Deng, chen wang, E. Spencer, Liyong Yang, A. Braun, J. You, C. Slaughter, C. Pickart, Zhijian Chen (2000)
Activation of the IκB Kinase Complex by TRAF6 Requires a Dimeric Ubiquitin-Conjugating Enzyme Complex and a Unique Polyubiquitin ChainCell, 103
F. Hayashi, Kelly Smith, A. Ozinsky, T. Hawn, E. Yi, D. Goodlett, J. Eng, S. Akira, D. Underhill, A. Aderem (2001)
The innate immune response to bacterial flagellin is mediated by Toll-like receptor 5Nature, 410
L. Arbibe, J. Mira, N. Teusch, L. Kline, M. Guha, N. Mackman, P. Godowski, R. Ulevitch, U. Knaus (2000)
Toll-like receptor 2-mediated NF-kappa B activation requires a Rac1-dependent pathway.Nature immunology, 1 6
Z. Cao, J. Xiong, M. Takeuchi, Takeshi Kurama, D. Goeddel (1996)
TRAF6 is a signal transducer for interleukin-1Nature, 383
Marcia Belvin, K. Anderson (1996)
A conserved signaling pathway: the Drosophila toll-dorsal pathway.Annual review of cell and developmental biology, 12
Madhur Kumar, G. Carmichael (1998)
Antisense RNA: Function and Fate of Duplex RNA in Cells of Higher EukaryotesMicrobiology and Molecular Biology Reviews, 62
M. Gilliet, A. Boonstra, C. Paturel, S. Antonenko, Xiu-ling Xu, G. Trinchieri, A. O’Garra, Yong‐jun Liu (2002)
The Development of Murine Plasmacytoid Dendritic Cell Precursors Is Differentially Regulated by FLT3-ligand and Granulocyte/Macrophage Colony-Stimulating FactorThe Journal of Experimental Medicine, 195
L. Arbibe, J. Mira, N. Teusch, L. Kline, M. Guha, N. Mackman, P. Godowski, R. Ulevitch, U. Knaus (2000)
Toll-like receptor 2–mediated NF-κB activation requires a Rac1-dependent pathwayNature Immunology, 1
O. Elomaa, M. Kangas, C. Sahlberg, J. Tuukkanen, R. Sormunen, A. Liakka, I. Thesleff, G. Kraal, K. Tryggvason (1995)
Cloning of a novel bacteria-binding receptor structurally related to scavenger receptors and expressed in a subset of macrophagesCell, 80
M. Muzio, G. Natoli, S. Saccani, M. Levrero, A. Mantovani (1998)
The Human Toll Signaling Pathway: Divergence of Nuclear Factor κB and JNK/SAPK Activation Upstream of Tumor Necrosis Factor Receptor–associated Factor 6 (TRAF6)The Journal of Experimental Medicine, 187
M. Oldstone, M. Nerenberg, P. Southern, J. Price, H. Lewicki (1991)
Virus infection triggers insulin-dependent diabetes mellitus in a transgenic model: Role of anti-self (virus) immune responseCell, 65
Y. Engström, L. Kadalayil, Shao-Cong Sun, C. Samakovlis, C. Samakovlis, D. Hultmark, I. Faye (1993)
kappa B-like motifs regulate the induction of immune genes in Drosophila.Journal of molecular biology, 232 2
A. Bowie, E. Kiss-Toth, J. Symons, Geoffrey Smith, S. Dower, L. O’Neill (2000)
A46R and A52R from vaccinia virus are antagonists of host IL-1 and toll-like receptor signaling.Proceedings of the National Academy of Sciences of the United States of America, 97 18
E. Levashina, E. Langley, C. Green, D. Gubb, M. Ashburner, J. Hoffmann, J. Reichhart (1999)
Constitutive activation of toll-mediated antifungal defense in serpin-deficient Drosophila.Science, 285 5435
T. Means, Shuyan Wang, E. Lien, A. Yoshimura, D. Golenbock, M. Fenton (1999)
Human toll-like receptors mediate cellular activation by Mycobacterium tuberculosis.Journal of immunology, 163 7
H. Häcker, H. Mischak, T. Miethke, S. Liptay, R. Schmid, T. Sparwasser, K. Heeg, G. Lipford, H. Wagner (1998)
CpG‐DNA‐specific activation of antigen‐presenting cells requires stress kinase activity and is preceded by non‐specific endocytosis and endosomal maturationThe EMBO Journal, 17
Y. Ogura, N. Inohara, A. Benito, Felicia Chen, S. Yamaoka, G. Núñez (2001)
Nod2, a Nod1/Apaf-1 Family Member That Is Restricted to Monocytes and Activates NF-κB*The Journal of Biological Chemistry, 276
F. Leulier, Antony Rodriguez, R. Khush, J. Abrams, B. Lemaître (2000)
The Drosophila caspase Dredd is required to resist Gram‐negative bacterial infectionEMBO reports, 1
J. Imler, J. Hoffmann (2000)
Signaling mechanisms in the antimicrobial host defense of Drosophila.Current opinion in microbiology, 3 1
S. Tauszig, E. Jouanguy, J. Hoffmann, J. Imler (2000)
Toll-related receptors and the control of antimicrobial peptide expression in Drosophila.Proceedings of the National Academy of Sciences of the United States of America, 97 19
O. Takeuchi, T. Kawai, P. Mühlradt, M. Morr, J. Radolf, A. Zychlinsky, K. Takeda, S. Akira (2001)
Discrimination of bacterial lipoproteins by Toll-like receptor 6.International immunology, 13 7
C. Werts, R. Tapping, J. Mathison, T. Chuang, V. Kravchenko, I. Girons, D. Haake, P. Godowski, F. Hayashi, A. Ozinsky, D. Underhill, C. Kirschning, H. Wagner, A. Aderem, P. Tobias, R. Ulevitch (2001)
Leptospiral lipopolysaccharide activates cells through a TLR2-dependent mechanismNature Immunology, 2
S. Rutschmann, A. Jung, C. Hétru, J. Reichhart, J. Hoffmann, D. Ferrandon (2000)
The Rel protein DIF mediates the antifungal but not the antibacterial host defense in Drosophila.Immunity, 12 5
J. Bertin, Waan-Jeng Nir, Colleen Fischer, Olga Tayber, P. Errada, Jessica Grant, John Keilty, Michael Gosselin, K. Robison, Grace Wong, M. Glucksmann, P. Distefano (1999)
Human CARD4 Protein Is a Novel CED-4/Apaf-1 Cell Death Family Member That Activates NF-κB*The Journal of Biological Chemistry, 274
C. Janeway, C. Janeway (1992)
The immune system evolved to discriminate infectious nonself from noninfectious self.Immunology today, 13 1
S. Rutschmann, A. Jung, R. Zhou, N. Silverman, J. Hoffmann, D. Ferrandon (2000)
Role of Drosophila IKK gamma in a toll-independent antibacterial immune response.Nature immunology, 1 4
X. Meng, B. Khanuja, Y. Ip (1999)
Toll receptor-mediated Drosophila immune response requires Dif, an NF-kappaB factor.Genes & development, 13 7
H. Hemmi, O. Takeuchi, T. Kawai, T. Kaisho, Shintaro Sato, H. Sanjo, M. Matsumoto, K. Hoshino, H. Wagner, K. Takeda, S. Akira (2000)
A Toll-like receptor recognizes bacterial DNANature, 408
H. Suzuki, H. Suzuki, Y. Kurihara, M. Takeya, N. Kamada, M. Kataoka, K. Jishage, O. Ueda, H. Sakaguchi, T. Higashi, Tsukasa Suzuki, Y. Takashima, Y. Kawabe, Y. Kawabe, O. Cynshi, Y. Wada, M. Honda, H. Kurihara, H. Aburatani, T. Doi, A. Matsumoto, S. Azuma, T. Noda, Y. Toyoda, H. Itakura, Y. Yazaki, S. Horiuchi, Kiyoshi Takahashi, J. Kruijt, T. Berkel, U. Steinbrecher, S. Ishibashi, N. Maeda, S. Gordon, T. Kodama (1997)
A role for macrophage scavenger receptors in atherosclerosis and susceptibility to infectionNature, 386
M. Krieger, J. Herz (1994)
Structures and functions of multiligand lipoprotein receptors: macrophage scavenger receptors and LDL receptor-related protein (LRP).Annual review of biochemistry, 63
Monicia Elrod-Erickson, Smita Mishra, D. Schneider (2000)
Interactions between the cellular and humoral immune responses in DrosophilaCurrent Biology, 10
B. Lemaître, E. Kromer-Metzger, Lydia Michaut, E. Nicolas, M. Meister, P. Georgel, J. Reichhart, J. Hoffmann (1995)
A recessive mutation, immune deficiency (imd), defines two distinct control pathways in the Drosophila host defense.Proceedings of the National Academy of Sciences of the United States of America, 92 21
Yiran Lu, Louisa Wu, K. Anderson (2001)
The antibacterial arm of the drosophila innate immune response requires an IkappaB kinase.Genes & development, 15 1
A. Agrawal, A. Shrive, T. Greenhough, J. Volanakis (2001)
Topology and Structure of the C1q-Binding Site on C-Reactive Protein1The Journal of Immunology, 166
N. Inohara, T. Koseki, L. Peso, Yuanming Hu, C. Yee, Shu Chen, R. Carrio, J. Merino, Ding Liu, J. Ni, G. Núñez (1999)
Nod1, an Apaf-1-like Activator of Caspase-9 and Nuclear Factor-κB*The Journal of Biological Chemistry, 274
O. Takeuchi, K. Hoshino, T. Kawai, H. Sanjo, H. Takada, T. Ogawa, K. Takeda, S. Akira (1999)
Differential roles of TLR2 and TLR4 in recognition of gram-negative and gram-positive bacterial cell wall components.Immunity, 11 4
Po Chen, Antony Rodriguez, R. Erskine, Tien Thach, J. Abrams (1998)
Dredd, a novel effector of the apoptosis activators reaper, grim, and hid in Drosophila.Developmental biology, 201 2
K. Hammond-Kosack, Jonathan Jones (1997)
PLANT DISEASE RESISTANCE GENES.Annual review of plant physiology and plant molecular biology, 48
A. Krieg, A. Yi, S. Matson, T. Waldschmidt, G. Bishop, R. Teasdale, G. Koretzky, D. Klinman (1995)
CpG motifs in bacterial DNA trigger direct B-cell activationNature, 374
K. Burns, Jonathan Clatworthy, Laurence Martin, F. Martinon, C. Plumpton, B. Maschera, A. Lewis, K. Ray, J. Tschopp, F. Volpe (2000)
Tollip, a new component of the IL-1RI pathway, links IRAK to the IL-1 receptorNature Cell Biology, 2
A. Agrawal, Q. Eastman, D. Schatz (1998)
Transposition mediated by RAG1 and RAG2 and its implications for the evolution of the immune systemNature, 394
S. Qureshi, L. Larivière, G. Leveque, S. Clermont, K. Moore, P. Gros, D. Malo (1999)
Endotoxin-tolerant Mice Have Mutations in Toll-like Receptor 4 (Tlr4)The Journal of Experimental Medicine, 189
S. Yamaoka, G. Courtois, C. Bessia, S. Whiteside, R. Weil, F. Agou, H. Kirk, R. Kay, A. Israël (1998)
Complementation Cloning of NEMO, a Component of the IκB Kinase Complex Essential for NF-κB ActivationCell, 93
A. Aliprantis, Ruey-Bing Yang, M. Mark, Shelly Suggett, B. Devaux, J. Radolf, G. Klimpel, P. Godowski, A. Zychlinsky (1999)
Cell activation and apoptosis by bacterial lipoproteins through toll-like receptor-2.Science, 285 5428
M. Hedengren, Marika Hedengren, BengtÅsling, M. Dushay, I. Andó, I. Andó, Sophia Ekengren, Sophia Ekengren, Margareta Wihlborg, D. Hultmark, D. Hultmark (1999)
Relish, a central factor in the control of humoral but not cellular immunity in Drosophila.Molecular cell, 4 5
K. Hiom, M. Melek, M. Gellert (1998)
DNA Transposition by the RAG1 and RAG2 Proteins A Possible Source of Oncogenic TranslocationsCell, 94
O. Adachi, T. Kawai, K. Takeda, M. Matsumoto, H. Tsutsui, M. Sakagami, K. Nakanishi, S. Akira (1998)
Targeted disruption of the MyD88 gene results in loss of IL-1- and IL-18-mediated function.Immunity, 9 1
A. Poltorak, Xiaolong He, I. Smirnova, Mu-ya Liu, C. Huffel, Xin Du, D. Birdwell, Erica Alejos, Maria Silva, C. Galanos, M. Freudenberg, P. Ricciardi-Castagnoli, Betsy Layton, B. Beutler (1998)
Defective LPS signaling in C3H/HeJ and C57BL/10ScCr mice: mutations in Tlr4 gene.Science, 282 5396
R. Ulevitch, P. Tobias (1995)
Receptor-dependent mechanisms of cell stimulation by bacterial endotoxin.Annual review of immunology, 13
▪ Abstract The innate immune system is a universal and ancient form of host defense against infection. Innate immune recognition relies on a limited number of germline-encoded receptors. These receptors evolved to recognize conserved products of microbial metabolism produced by microbial pathogens, but not by the host. Recognition of these molecular structures allows the immune system to distinguish infectious nonself from noninfectious self. Toll-like receptors play a major role in pathogen recognition and initiation of inflammatory and immune responses. Stimulation of Toll-like receptors by microbial products leads to the activation of signaling pathways that result in the induction of antimicrobial genes and inflammatory cytokines. In addition, stimulation of Toll-like receptors triggers dendritic cell maturation and results in the induction of costimulatory molecules and increased antigen-presenting capacity. Thus, microbial recognition by Toll-like receptors helps to direct adaptive immune responses to antigens derived from microbial pathogens.
Annual Review of Immunology – Annual Reviews
Published: Apr 1, 2002
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