Nuclear factor for IL-6 expression (NF-IL6) was originally identified as a nuclear factor binding to a 14-bp palindromic sequence (ACATTGCACAATCT) within an interleukin (IL)-1 responsive element in the human IL-6 gene (1). The cloning of the cDNA encoding human NF-IL6 revealed that it shows a high degree of homology with C/EBP in the carboxy-terminal basic and leucine zipper domains, responsible for DNA binding and dimerization, respectively (2). NF-IL6 recognizes the same nucleotide sequences as C/EBP. Both proteins bind to a variety of the divergent nucleotide sequences with different affinity, the consensus sequence is T(T/G)NNGNNAA(T/G). The NF-IL6 gene is intronless, and produces two proteins, liver-enriched transcriptional activator protein (LAP, equivalent to NF-IL6) and liver inhibitory protein (LIP) by alternative usage of two AUG initiation codons within the same open reading frame (3). LIP contains the DNA binding and dimerization domains but is devoid of the N terminal transcriptional activation domain, and therefore behaves as an antagonist of LAP-induced transcription.
Toll-like receptors (TLRs) play an important role in innate immunity. Individual TLRs recognise microbial components that are conserved among pathogens. Such recognition initiates necessary inflammatory immune responses and induces subsequent activation of adaptive immunity. Studies in people with polymorphisms in genes encoding TLR signalling can elucidate the relationship between TLRs and human diseases, such as infectious diseases, atherosclerosis and immunodeficiency. Indeed, accumulating data in respect to TLR signalling suggest that TLRs are closely related with the pathogenesis of autoimmune diseases. This review looks at the role of TLRs in various immune disorders, and discusses the pathogenesis of diseases.
Acute-phase response factor (APRF) is a transcription factor that binds to the interleukin-6 (IL-6)-responsive elements identified in the promoters of various acute-phase protein genes. We report here the purification and cloning of APRF. APRF exhibits a 52.5% overall homology at the amino acid level with p91, a component of the interferon (IFN)-stimulated gene factor 3 complexes. The cloned APRF protein is tyrosine phosphorylated and translocated into the nucleus in response to IL-6, but not in response to IFN-γ. Tyrosine phosphorylation was also observed in response to other cytokines, such as leukemia inhibitory factor, oncostatin M, and ciliary neurotrophic factor, whose receptors share the IL-6 receptor signal transducer gp130. In contrast, we observed that p91 is not tyrosine phosphorylated in response to IL-6. These results suggest that this novel p91-related protein may play a major role in the gp130-mediated signaling pathway and that selective activation of p91-related factors may explain the diversity of cellular responses to different cytokines.
CpG methylation of DNA silences TLR9-mediated innate immune recognition. In this issue of Immunity, Kariko et al. (2005) suggest that the innate immune recognition of RNA by TLR3, TLR7, or TLR8 is in fact controlled by modification of nucleotides, including methylation.
No abstract is provided for this article.
Surya Pandey1,2,3, Taro Kawai1,2 and Shizuo Akira2,3 1Laboratory of Molecular Immunobiology, Graduate School of Biological Sciences, Nara Institute of Science and Technology (NAIST), Nara 630-0192, Japan 2Laboratory of Host Defense, WPI Immunology Frontier Research Center, Osaka University, Osaka 565-0871, Japan 3Department of Host Defense, Research Institute for Microbial Diseases, Osaka University, Osaka 565-0871, Japan Correspondence: tarokawai{at}bs.naist.jp; sakira{at}biken.osaka-u.ac.jp
No abstract is provided for this article.
Infection of cells by microorganisms activates the inflammatory response. The initial sensing of infection is mediated by innate pattern recognition receptors (PRRs), which include Toll-like receptors, RIG-I-like receptors, NOD-like receptors, and C-type lectin receptors. The intracellular signaling cascades triggered by these PRRs lead to transcriptional expression of inflammatory mediators that coordinate the elimination of pathogens and infected cells. However, aberrant activation of this system leads to immunodeficiency, septic shock, or induction of autoimmunity. In this Review, we discuss the role of PRRs, their signaling pathways, and how they control inflammatory responses.