Mechanisms and Consequences of TLR Signal Transduction
Mechanisms and Consequences of TLR Signal Transduction
批准号:
7024568
负责人:
Stefanie N. Vogel
金额:
$25.38万
依托单位国家:
美国
项目类别:
财政年份:
2004
资助国家:
美国
项目状态:
已结题
起止时间:
2004-03-01 至 2009-02-28
关键词:
biological signal transductioncytokineenzyme activityenzyme linked immunosorbent assaygene mutationimmunityimmunogeneticsintracellularmitogen activated protein kinasemolecular cloningnuclear factor kappa betaphosphatidylinositol 3 kinaseprotein kinase Cprotein sequencereceptor expressionsite directed mutagenesistoll like receptortranscription factorwestern blottings
中文摘要
描述(由申请方提供):哺乳动物Toll样受体(TLR)蛋白是多种微生物产物的模式识别受体。已经鉴定了10种不同的TLR蛋白质,其似乎相对于它们识别的配体是非冗余的。不同的TLR激动剂在巨噬细胞和树突细胞中诱导不同的基因表达模式,表明先天免疫系统能够对被识别的病原体产生特异性应答。这种特异性的机制基础取决于由各种TLR蛋白激活的信号转导途径的差异。TLR蛋白在人类和其他哺乳动物的先天免疫和适应性免疫水平上在宿主防御中起重要作用。这些受体在开发有效的疫苗以防止感染方面也起着关键作用。事实上,目前已知的许多最有效的疫苗佐剂是TLR激动剂。已显示用确定的肽抗原进行免疫可引发Th 1和Th 2型免疫应答,这取决于抗原是分别在TLR 4或TLR 2激动剂存在下施用。因此,不同TLR蛋白引起不同基因表达模式的能力有助于定义感染或疫苗接种期间引起的免疫应答的确切性质。这些拟议研究的总体目标是表征导致不同TLR激动剂诱导的基因表达的不同模式的信号转导途径。我们的具体目标是:
(1)确定TLR 3和TLR 4的胞内信号结构域中对NF-κ B、MAP激酶和细胞因子表达的激活所必需的区域。
(2)确定TLR 3和TLR 4的胞内信号传导结构域中激活PKC-d和PI-3 K所必需的区域。
(3)评估TLR酪氨酸磷酸化的机制及其功能后果。
英文摘要
DESCRIPTION (provided by applicant): Mammalian Toll-like receptor (TLR) proteins are pattern recognition receptors for a diverse array of microbial products. Ten distinct TLR proteins have been identified, which appear to be non-redundant with respect to the ligands they recognize. Different TLR agonists induce distinct patterns of gene expression in macrophages and dendritic cells, suggesting that the innate immune system is capable of mounting a specific response to the pathogen being recognized. The mechanistic basis for this specificity depends on differences in signal transduction pathways activated by the various TLR proteins. TLR proteins play important roles in host defense at the levels of both innate and adaptive immunity in humans and other mammals. These receptors also play critical roles in the development of effective vaccines that protect against infection. Indeed, many of the most potent vaccine adjuvants currently know are TLR agonists. Immunization with a defined peptide antigen has been shown to elicit a Thl- and Th2-type immune response, depending on whether the antigen was administered in the presence of a TLR4 or a TLR2 agonist, respectively. Thus, the capacity of different TLR proteins to evoke distinct patterns of gene expression helps to define the precise nature of the immune response evoked during infection or vaccination. The overall objective of these proposed studies is to characterize the signal transduction pathways that lead to the distinct patterns of gene expression induced by different TLR agonists. Our specific aims will:
(1) Define regions within the intracellular signaling domains of TLR3 and TLR4 that are necessary for the activation of NF-kappaB, MAP kinases, and cytokine expression.
(2) Define regions within the intracellular signaling domains of TLR3 and TLR4 that are necessary for the activation of PKC-d and PI-3K.
(3) Assess the mechanism of TLR tyrosine phosphorylation and its functional consequences.
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