The IκB kinase (IKK) and NF-κB: key elements of proinflammatory signalling
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[1] P. Godowski,et al. Cell activation and apoptosis by bacterial lipoproteins through toll-like receptor-2. , 1999, Science.
[2] B. Bloom,et al. Host defense mechanisms triggered by microbial lipoproteins through toll-like receptors. , 1999, Science.
[3] B. Monks,et al. Cutting edge: cells that carry A null allele for toll-like receptor 2 are capable of responding to endotoxin. , 1999, Journal of immunology.
[4] T. Deerinck,et al. The IKKβ Subunit of IκB Kinase (IKK) is Essential for Nuclear Factor κB Activation and Prevention of Apoptosis , 1999, The Journal of experimental medicine.
[5] D. Ballard,et al. IKKγ Mediates the Interaction of Cellular IκB Kinases with the Tax Transforming Protein of Human T Cell Leukemia Virus Type 1* , 1999, The Journal of Biological Chemistry.
[6] F C Kafatos,et al. Phylogenetic perspectives in innate immunity. , 1999, Science.
[7] M. Karin,et al. Signaling by proinflammatory cytokines: oligomerization of TRAF2 and TRAF6 is sufficient for JNK and IKK activation and target gene induction via an amino-terminal effector domain. , 1999, Genes & development.
[8] T. Serikawa,et al. Alymphoplasia is caused by a point mutation in the mouse gene encoding Nf-κb-inducing kinase , 1999, Nature Genetics.
[9] A. Ciechanover,et al. Structural Motifs Involved in Ubiquitin-Mediated Processing of the NF-κB Precursor p105: Roles of the Glycine-Rich Region and a Downstream Ubiquitination Domain , 1999, Molecular and Cellular Biology.
[10] T. Deerinck,et al. Abnormal Morphogenesis But Intact IKK Activation in Mice Lacking the IKKα Subunit of IκB Kinase , 1999 .
[11] Michael Karin,et al. Positive and Negative Regulation of IκB Kinase Activity Through IKKβ Subunit Phosphorylation , 1999 .
[12] S. Akira,et al. Limb and skin abnormalities in mice lacking IKKalpha. , 1999, Science.
[13] Inder M. Verma,et al. Severe Liver Degeneration in Mice Lacking the IκB Kinase 2 Gene , 1999 .
[14] D. Goeddel,et al. Embryonic Lethality, Liver Degeneration, and Impaired NF-κB Activation in IKK-β-Deficient Mice , 1999 .
[15] S. Akira,et al. Cutting edge: Toll-like receptor 4 (TLR4)-deficient mice are hyporesponsive to lipopolysaccharide: evidence for TLR4 as the Lps gene product. , 1999, Journal of immunology.
[16] L. Old,et al. Absence of tumor necrosis factor rescues RelA-deficient mice from embryonic lethality. , 1999, Proceedings of the National Academy of Sciences of the United States of America.
[17] L. Larivière,et al. Endotoxin-tolerant Mice Have Mutations in Toll-like Receptor 4 (Tlr4) , 1999, The Journal of experimental medicine.
[18] S. Wright. Toll, A New Piece in the Puzzle of Innate Immunity , 1999, The Journal of experimental medicine.
[19] Zhijian J. Chen,et al. Signal-induced ubiquitination of IκBα by the F-box protein Slimb/β-TrCP , 1999 .
[20] W. Greene,et al. The Proto-Oncogene Cot Kinase Participates in CD3/CD28 Induction of NF-κB Acting through the NF-κB-Inducing Kinase and IκB Kinases , 1999 .
[21] Stephen J. Elledge,et al. The SCFβ-TRCP–ubiquitin ligase complex associates specifically with phosphorylated destruction motifs in IκBα and β-catenin and stimulates IκBα ubiquitination in vitro , 1999 .
[22] M. Mann,et al. IκB Kinase (IKK)-Associated Protein 1, a Common Component of the Heterogeneous IKK Complex , 1999, Molecular and Cellular Biology.
[23] L. Johnston,et al. TPL-2 kinase regulates the proteolysis of the NF-κB-inhibitory protein NF-κB1 p105 , 1999, Nature.
[24] H. Erdjument-Bromage,et al. Elongator, a multisubunit component of a novel RNA polymerase II holoenzyme for transcriptional elongation. , 1999, Molecular cell.
[25] M. Karin,et al. The I kappa B kinase: a master regulator of NF-kappa B, innate immunity, and epidermal differentiation. , 1999, Cold Spring Harbor symposia on quantitative biology.
[26] P. Ricciardi-Castagnoli,et al. Defective LPS signaling in C3H/HeJ and C57BL/10ScCr mice: mutations in Tlr4 gene. , 1998, Science.
[27] G. Ghosh,et al. The Crystal Structure of the IκBα/NF-κB Complex Reveals Mechanisms of NF-κB Inactivation , 1998, Cell.
[28] E. Lund,et al. Proofreading and aminoacylation of tRNAs before export from the nucleus. , 1998, Science.
[29] M. Rothe,et al. Human Toll-like Receptor 2 Confers Responsiveness to Bacterial Lipopolysaccharide , 1998, The Journal of experimental medicine.
[30] A. Lin,et al. Coordinate Regulation of IκB Kinases by Mitogen-Activated Protein Kinase Kinase Kinase 1 and NF-κB-Inducing Kinase , 1998, Molecular and Cellular Biology.
[31] M. Mann,et al. Identification of the receptor component of the IκBα–ubiquitin ligase , 1998, Nature.
[32] S. Harrison,et al. Structure of an IκBα/NF-κB Complex , 1998, Cell.
[33] G. W. Peet,et al. Recombinant IκB Kinases α and β Are Direct Kinases of IκBα* , 1998, The Journal of Biological Chemistry.
[34] M. Karin,et al. JNKK1 organizes a MAP kinase module through specific and sequential interactions with upstream and downstream components mediated by its amino-terminal extension. , 1998, Genes & development.
[35] Xin Lin,et al. Molecular Determinants of NF-κB-Inducing Kinase Action , 1998, Molecular and Cellular Biology.
[36] E. Zandi,et al. IKK-γ is an essential regulatory subunit of the IκB kinase complex , 1998, Nature.
[37] P. Baeuerle,et al. IKAP is a scaffold protein of the IκB kinase complex , 1998, Nature.
[38] A. Gurney,et al. Toll-like receptor-2 mediates lipopolysaccharide-induced cellular signalling , 1998, Nature.
[39] W. Greene,et al. Human T-Cell Leukemia Virus Type 1 Tax Induction of NF-κB Involves Activation of the IκB Kinase α (IKKα) and IKKβ Cellular Kinases , 1998, Molecular and Cellular Biology.
[40] Ebrahim Zandi,et al. Direct Phosphorylation of IκB by IKKα and IKKβ: Discrimination Between Free and NF-κB-Bound Substrate , 1998 .
[41] E. Zandi,et al. NF-κB-inducing Kinase and IκB Kinase Participate in Human T-cell Leukemia Virus I Tax-mediated NF-κB Activation* , 1998, The Journal of Biological Chemistry.
[42] T. Maniatis,et al. MEKK1 activates both IκB kinase α and IκB kinase β , 1998 .
[43] D. Ballard,et al. The Tax Oncoprotein of Human T-cell Leukemia Virus Type 1 Associates with and Persistently Activates IκB Kinases Containing IKKα and IKKβ* , 1998, The Journal of Biological Chemistry.
[44] G. Courtois,et al. Complementation Cloning of NEMO, a Component of the IκB Kinase Complex Essential for NF-κB Activation , 1998, Cell.
[45] L. O’Neill,et al. Ceramide Activates NFκB by Inducing the Processing of p105* , 1998, The Journal of Biological Chemistry.
[46] G. Martin,et al. The roles of FGFs in the early development of vertebrate limbs. , 1998, Genes & development.
[47] R. Gaynor,et al. HTLV-I Tax Protein Binds to MEKK1 to Stimulate IκB Kinase Activity and NF-κB Activation , 1998, Cell.
[48] K. Miller,et al. The Multisubunit IκB Kinase Complex Shows Random Sequential Kinetics and Is Activated by the C-terminal Domain of IκBα* , 1998, The Journal of Biological Chemistry.
[49] A. Goldberg,et al. Enzymes Catalyzing Ubiquitination and Proteolytic Processing of the p105 Precursor of Nuclear Factor κB1* , 1998, The Journal of Biological Chemistry.
[50] Hideaki Ishikawa,et al. Chronic Inflammation and Susceptibility to Bacterial Infections in Mice Lacking the Polypeptide (p)105 Precursor (NF-κB1) but Expressing p50 , 1998, The Journal of experimental medicine.
[51] H. Nakano,et al. Differential regulation of IκB kinase α and β by two upstream kinases, NF-κB-inducing kinase and mitogen-activated protein kinase/ERK kinase kinase-1 , 1998 .
[52] Zhaodan Cao,et al. NF-κB-inducing kinase activates IKK-α by phosphorylation of Ser-176 , 1998 .
[53] W. Greene,et al. Cotranslational Biogenesis of NF-κB p50 by the 26S Proteasome , 1998, Cell.
[54] P. Khavari,et al. Alterations in NF-κB function in transgenic epithelial tissue demonstrate a growth inhibitory role for NF-κB , 1998 .
[55] G. Hardiman,et al. A family of human receptors structurally related to Drosophila Toll. , 1998, Proceedings of the National Academy of Sciences of the United States of America.
[56] M J May,et al. NF-kappa B and Rel proteins: evolutionarily conserved mediators of immune responses. , 1998, Annual review of immunology.
[57] P. Feng,et al. IRAK (Pelle) family member IRAK-2 and MyD88 as proximal mediators of IL-1 signaling. , 1997, Science.
[58] A. Ciechanover,et al. Inhibition of NF‐κB cellular function via specific targeting of the IκB‐ubiquitin ligase , 1997 .
[59] Matthias Mann,et al. IKK-1 and IKK-2: Cytokine-Activated IκB Kinases Essential for NF-κB Activation , 1997 .
[60] Mike Rothe,et al. IκB Kinase-β: NF-κB Activation and Complex Formation with IκB Kinase-α and NIK , 1997 .
[61] C. Janeway,et al. Innate Immunity: The Virtues of a Nonclonal System of Recognition , 1997, Cell.
[62] E. Zandi,et al. The IκB Kinase Complex (IKK) Contains Two Kinase Subunits, IKKα and IKKβ, Necessary for IκB Phosphorylation and NF-κB Activation , 1997, Cell.
[63] D. Carrasco,et al. Gastric Hyperplasia and Increased Proliferative Responses of Lymphocytes in Mice Lacking the COOH-terminal Ankyrin Domain of NF-κB2 , 1997, The Journal of experimental medicine.
[64] D. Goeddel,et al. Tumor necrosis factor (TNF)-mediated kinase cascades: bifurcation of nuclear factor-kappaB and c-jun N-terminal kinase (JNK/SAPK) pathways at TNF receptor-associated factor 2. , 1997, Proceedings of the National Academy of Sciences of the United States of America.
[65] David M. Rothwarf,et al. A cytokine-responsive IκB kinase that activates the transcription factor NF-κB , 1997, Nature.
[66] D. Goeddel,et al. Identification and Characterization of an IκB Kinase , 1997, Cell.
[67] C. Janeway,et al. A human homologue of the Drosophila Toll protein signals activation of adaptive immunity , 1997, Nature.
[68] G. Thomsen. Antagonism within and around the organizer: BMP inhibitors in vertebrate body patterning. , 1997, Trends in genetics : TIG.
[69] J. Graff,et al. Embryonic Patterning: To BMP or Not to BMP, That Is the Question , 1997, Cell.
[70] R. Steward,et al. The dorsoventral signal transduction pathway and the Rel-like transcription factors in Drosophila. , 1997, Seminars in cancer biology.
[71] D. Wallach,et al. MAP3K-related kinase involved in NF-KB induction by TNF, CD95 and IL-1 , 1997, Nature.
[72] D. Thomas,et al. Nuclear localization of I kappa B alpha promotes active transport of NF-kappa B from the nucleus to the cytoplasm. , 1997, Journal of cell science.
[73] T. Maniatis,et al. Activation of the IκBα Kinase Complex by MEKK1, a Kinase of the JNK Pathway , 1997, Cell.
[74] J. Schwabe,et al. Outgrowth and patterning of the vertebrate limb. , 1997, Cold Spring Harbor symposia on quantitative biology.
[75] Ronald T. Hay,et al. Nuclear localization of IκBα promotes active transport of NF-κB from the nucleus to the cytoplasm , 1997 .
[76] S A Wasserman,et al. A gradient of cactus protein degradation establishes dorsoventral polarity in the Drosophila embryo. , 1996, Developmental biology.
[77] David Baltimore,et al. An Essential Role for NF-κB in Preventing TNF-α-Induced Cell Death , 1996, Science.
[78] David Baltimore,et al. NF-κB: Ten Years After , 1996, Cell.
[79] B. Lemaître,et al. The Dorsoventral Regulatory Gene Cassette spätzle/Toll/cactus Controls the Potent Antifungal Response in Drosophila Adults , 1996, Cell.
[80] B. Hogan,et al. Bone morphogenetic proteins: multifunctional regulators of vertebrate development. , 1996, Genes & development.
[81] E. Harhaj,et al. Inhibition of p105 processing by NF-kappaB proteins in transiently transfected cells. , 1996, Oncogene.
[82] L. Niswander,et al. Requirement for BMP Signaling in Interdigital Apoptosis and Scale Formation , 1996, Science.
[83] S. Ghosh,et al. A glycine-rich region in NF-kappaB p105 functions as a processing signal for the generation of the p50 subunit , 1996, Molecular and cellular biology.
[84] L. Johnson,et al. Active and Inactive Protein Kinases: Structural Basis for Regulation , 1996, Cell.
[85] M. Karin,et al. Mapping of the inducible IkappaB phosphorylation sites that signal its ubiquitination and degradation , 1996, Molecular and cellular biology.
[86] T. Maniatis,et al. Site-Specific Phosphorylation of IκBα by a Novel Ubiquitination-Dependent Protein Kinase Activity , 1996, Cell.
[87] A. Israël,et al. Phosphorylation of p105 PEST Sequences via a Redox-insensitive Pathway Up-regulates Processing to p50 NF-B (*) , 1996, The Journal of Biological Chemistry.
[88] Z. Cao,et al. IRAK: A Kinase Associated with the Interleukin-1 Receptor , 1996, Science.
[89] A. Baldwin,et al. THE NF-κB AND IκB PROTEINS: New Discoveries and Insights , 1996 .
[90] D. Baltimore,et al. Constitutive NF-kappa B activation, enhanced granulopoiesis, and neonatal lethality in I kappa B alpha-deficient mice. , 1995, Genes & development.
[91] A. Ciechanover,et al. Ubiquitin-mediated processing of NF-kappa B transcriptional activator precursor p105. Reconstitution of a cell-free system and identification of the ubiquitin-carrier protein, E2, and a novel ubiquitin-protein ligase, E3, involved in conjugation. , 1995, The Journal of biological chemistry.
[92] G. Perini,et al. Recognition of bZIP proteins by the human T-cell leukaemia virus transactivator Tax , 1995, Nature.
[93] A. Schepartz,et al. Mechanism of DNA-binding enhancement by the human T-cell leukaemia virus transactivator Tax , 1995, Nature.
[94] David Baltimore,et al. Embryonic lethality and liver degeneration in mice lacking the RelA component of NF-κB , 1995, Nature.
[95] H. Pahl,et al. Phosphorylation of human I kappa B‐alpha on serines 32 and 36 controls I kappa B‐alpha proteolysis and NF‐kappa B activation in response to diverse stimuli. , 1995, The EMBO journal.
[96] K. Anderson,et al. Cactus protein degradation mediates Drosophila dorsal-ventral signaling. , 1995, Genes & development.
[97] S. Gerstberger,et al. Control of I kappa B-alpha proteolysis by site-specific, signal-induced phosphorylation , 1995, Science.
[98] A. Yaron,et al. In vivo stimulation of I kappa B phosphorylation is not sufficient to activate NF-kappa B , 1995, Molecular and cellular biology.
[99] M. Karin,et al. Phosphorylation of I kappa B alpha precedes but is not sufficient for its dissociation from NF-kappa B , 1995, Molecular and cellular biology.
[100] D. Ballard,et al. Proteolytic Processing of NF-B/IB in Human Monocytes , 1995, The Journal of Biological Chemistry.
[101] Connelly Ma,et al. CHUK, a new member of the helix-loop-helix and leucine zipper families of interacting proteins, contains a serine-threonine kinase catalytic domain. , 1995 .
[102] K. Fujimoto,et al. A role for phosphorylation in the proteolytic processing of the human NF-kappa B1 precursor. , 1995, Gene.
[103] G L Johnson,et al. Differential activation of ERK and JNK mitogen-activated protein kinases by Raf-1 and MEKK. , 1994, Science.
[104] P. Baeuerle,et al. A proteasome inhibitor prevents activation of NF‐kappa B and stabilizes a newly phosphorylated form of I kappa B‐alpha that is still bound to NF‐kappa B. , 1994, The EMBO journal.
[105] Tom Maniatis,et al. The ubiquitinproteasome pathway is required for processing the NF-κB1 precursor protein and the activation of NF-κB , 1994, Cell.
[106] A. Ashworth,et al. Identification of the sites in MAP kinase kinase‐1 phosphorylated by p74raf‐1. , 1994, The EMBO journal.
[107] C. Zheng,et al. Activation of MEK family kinases requires phosphorylation of two conserved Ser/Thr residues. , 1994, The EMBO journal.
[108] G. Franzoso,et al. Structure, regulation and function of NF-kappa B. , 1994, Annual review of cell biology.
[109] A. Israël,et al. Promoter analysis of the gene encoding the I kappa B‐alpha/MAD3 inhibitor of NF‐kappa B: positive regulation by members of the rel/NF‐kappa B family. , 1993, The EMBO journal.
[110] M. Green,et al. HTLV-I Tax protein stimulation of DNA binding of bZIP proteins by enhancing dimerization. , 1993, Science.
[111] M. Karin,et al. p105 and p98 precursor proteins play an active role in NF-kappa B-mediated signal transduction. , 1993, Genes & development.
[112] C. Scheidereit,et al. The NF‐kappa B precursor p105 and the proto‐oncogene product Bcl‐3 are I kappa B molecules and control nuclear translocation of NF‐kappa B. , 1993, The EMBO journal.
[113] A. Israël,et al. The precursor of NF-κB p50 has IκB-like functions , 1992, Cell.
[114] K. Anderson,et al. The Toll gene of drosophila, required for dorsal-ventral embryonic polarity, appears to encode a transmembrane protein , 1988, Cell.
[115] David Baltimore,et al. Inducibility of κ immunoglobulin enhancer-binding protein NF-κB by a posttranslational mechanism , 1986, Cell.