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Our laboratory studies mechanisms of innate immunity. Through generation of knockout mice, we have demonstrated that a family of Toll-like receptors (TLR) recognizes a variety of PAMPs such as lipopolysaccharide, lipoprotein and nucleic acids derived from bacteria, viruses and protozoa to elicit innate immune responses. We have also demonstrated that a family of RIG-I-like RNA helicases (RLR) including RIG-I and MDA5 participates in TLR-independent recognition of nucleic acids derived from different types of RNA viruses in the cytoplasm. NOD-like receptors(NLR) also sense microbial components in the cytoplasm of cells. Several C-type lectin receptors(CLR) are shown to recognize the carbohydrates from pathogens. Here I will talk about the anti-viral response by neutrophil extracellular DNA trap(NET) and ZAP.
Higher animals establish host defense by orchestrating innate and adaptive immunity. This is mediated by professional antigen presenting cells, i.e. dendritic cells (DCs). DCs can incorporate pathogens, produce a variety of cytokines, maturate, and present pathogen-derived peptides to T cells, thereby inducing T cell activation and differentiation. These responses are triggered by microbial recognition through type I transmembrane proteins, Toll-like receptors (TLRs) on DCs. TLRs consist of ten members and each TLR is involved in recognizing a variety of microorganism-derived molecular structures. TLR ligands include cell wall components, proteins, nucleic acids, and synthetic chemical compounds, all of which can activate DCs as immune adjuvants. Each TLR can activate DCs in a similar, but distinct manner. For example, TLRs can be divided into subgroups according to their type I interferon (IFN) inducing ability. TLR2 cannot induce IFN-α or IFN-β, but TLR4 can lead to IFN-β production. Meanwhile, TLR3, TLR7, and TLR9 can induce both IFN-α and IFN-β. Recent evidences suggest that cytoplamic adapters for TLRs are especially crucial for this functional heterogeneity. Clarifying how DC function is regulated by TLRs should provide us with critical information for manipulating the host defense against a variety of diseases. Keywords: dendritic cell function, toll-like receptors, adaptive immunity, microorganism-derived, molecular structures
The present study describes the cloning of two novel serine/threonine kinases termed DRAK1 and DRAK2, whose catalytic domains are related to that of death-associated protein kinase, a serine/threonine kinase involved in apoptosis. Both DRAKs are composed of the N-terminal catalytic domain and the C-terminal domain that is responsible for regulation of kinase activity. DRAK1 and DRAK2 show 59.7% identity and display ubiquitous expression. An <i>in vitro</i> kinase assay revealed that both DRAKs are autophosphorylated and phosphorylate myosin light chain as an exogenous substrate, although the kinase activity of DRAK2 is significantly lower than that of DRAK1. Both DRAKs are exclusively localized to the nucleus. Furthermore, overexpression of both DRAKs induces the morphological changes of apoptosis in NIH 3T3 cells, suggesting the role of DRAKs in apoptotic signaling.