Toll-like receptors (TLRs) play an essential role in the detection of invading pathogens in the body. Individual TLRs recognize distinct components derived from pathogens, which is followed by cytokine production. The TLR family harbors extracellular leucine-rich repeat domains and a cytoplasmic domain that is homologous to that of the interleukin (IL)-1 receptor (IL-1R) family. After stimulation, TLR recruits IL-1R-associated kinase via adaptor myeloid differentiation factor 88 (MyD88) and induces activation of NF-kappaB and mitogen-activated protein kinases. Cytokine production in response to each TLR ligand is completely abrogated in MyD88-deficient cells, which indicates that MyD88 is an essential shared signaling molecule in the IL-1R/Toll family. The TLR4 signal has an MyD88-independent pathway that is involved in induction of type I interferons (IFNs) and IFN-inducible genes via IFN regulatory factor-3 activation. A recently identified adaptor molecule, Toll-IL receptor domain-containing adaptor protein/MyD88 adaptor-like, may participate in the MyD88-independent pathway.
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No abstract is provided for this article.
An Abelson virus-transformed murine pre-B cell line class-switched from mu to gamma 3 or gamma 2b at the pre-B stage during culture. A class-switch was mediated by the deletion mechanism of the intervening CH genes on the active chromosome. This study showed for the first time that class-switching at the pre-B cell stage was not always confined to gamma 2b production.
This chapter focuses on the roles of retinoic acid-inducible gene I (RIG-I)-like RNA helicases (RLHs) in RNA virus recognition and RLH signaling pathways. It describes the roles of the toll-like receptors (TLRs) system with respect to the relationship between these two virus recognition mechanisms during the course of RNA virus infections in vivo. RIG-I mediated signaling is positively and negatively controlled by ubiquitination of RIG-I. First, the caspase recruitment domains (CARDs) of RIG-I undergo Lys-63-linked ubiquitination by tripartite motif (TRIM) 25, a ubiquitin E3 ligase composed of a RING finger domain, B box/coiled-coil domain, and SPRY domain. In addition to RLHs, TLRs are also important in recognizing virus infections. Innate immediate immune responses are important for mounting acquired immune responses to viral infections. Recently, two different virus infection models have been analyzed to examine the roles of RLHs and TLRs in the activation of acquired immune responses. The contributions of these two melanoma differentiation-associated gene 5 (MDA-5) and TLR3 systems to the activation of T-cell responses have been examined. Recent progress in studies of RLHs and their signaling pathways has revealed that the RLH system is essential for inducing innate immune responses in response to RNA viruses infecting cells. Furthermore, various immune cells cooperate in order to establish optimized antiviral immune responses. Thus, studies monitoring immune responses in vivo could be vital to fully clarify the mechanisms of antiviral immune responses.
No abstract is provided for this article.
Bacterial deoxyribonucleic acid (DNA) containing cytosine phosphate guanine (CpG ) motifs, but not vertebrate DNA, activates innate immune cells. CpG motifs in vertebrate DNA are suppressed and usually methylated. In contrast, CpG motifs in bacterial DNA are observed at the expected frequency and unmethylated, which causes immune cell activation. CpG DNA activation of immune cells is reproducible in synthetic oligonucleotides containing CpG motifs. Treatment with CpG DNA induces a potent immune response dominated by Th1 cell-mediated cellular immunity, which prevents and cures several infectious and immune diseases in animal models. CpG DNA is therefore promising as a clinically useful agent for the treatment of several human diseases including cancer, allergy, and infectious diseases. The molecular mechanism of CpG DNA-induced cellular activation has been investigated intensively, and a signaling pathway is now being revealed. The critical components that recognize CpG DNA have recently been identified. In this chapter, we focus on the recent advances in the CpG DNA-induced activation of innate immune cells.