Toll-Like Receptor Signaling in Alzheimer's Disease
Toll-Like Receptor Signaling in Alzheimer's Disease
批准号:
8530758
负责人:
JOSEPH EL EL-KHOURY
金额:
$11.9万
依托单位国家:
美国
项目类别:
财政年份:
2008
资助国家:
美国
项目状态:
已结题
起止时间:
2008-09-30 至 2014-07-31
关键词:
Adaptor Signaling ProteinAlzheimer&aposs DiseaseAmyloidAmyloid depositionAmyloidosisAstrocytesAtherosclerosisBindingBrainCD14 geneCD36 geneCellsCerebrumChronicComplementComplexDataDepositionDevelopmentDiseaseDisease ProgressionFamilyGenerationsGenesGoalsHealthHost DefenseImmuneImmune responseImmune systemIn VitroInflammationInflammation MediatorsInflammatoryInflammatory ResponseInvadedLaboratoriesLigandsLigationMeasuresMediatingMicrogliaMolecularMolecular StructureMusNerve DegenerationNeuronsNitrogenOxygenPathogenesisPathologyPathway interactionsPattern recognition receptorPhagocytosisProductionProteinsRageReceptor SignalingRoleSenile PlaquesSignal PathwaySignal TransductionSiteSterilitySyndromeSystemTLR4 geneTLR6 geneTestingToll-like receptorsamyloid peptidebasebrain cellchemokinecytokineenzyme activityin vivoinflammatory markerinsightmicrobialneurotoxicneurotoxicitypathogenreceptorreceptor bindingresponsescavenger receptorsecretasetherapeutic target
中文摘要
描述(由申请人提供):小胶质细胞是大脑的主要先天免疫细胞。在阿尔茨海默病(AD)中,这些细胞结合淀粉样蛋白(A)并在A沉积部位积聚,包括老年斑。小胶质细胞与A?的相互作用促进慢性炎症反应,其特征在于产生促炎细胞因子和趋化因子、活性氧和氮物质以及补体蛋白。这种无菌性炎症通过A ²持续激活小胶质细胞来维持,并导致神经元变性和A ²沉积增加,因此促进疾病进展。结合A <$的受体和由A <$触发的促进慢性炎症的信号通路尚未完全了解。我们的长期目标是确定A?激活小胶质细胞的分子机制以及这些途径对AD发病机制的影响。我们假设,Toll样受体(TLR),一个进化上古老的模式识别受体家族,检测微生物配体,启动并维持小胶质细胞对A?的炎症反应。这一假设是基于初步的发现,靶向删除TLR信号转导衔接子MyD 88消除了体外和体内小胶质细胞对A?的炎症反应。在这个提议中,我们将定义负责启动这种信号传导的TLR和辅助受体,它们对小胶质细胞炎症反应的影响以及对疾病的影响。具体来说,我们将(1)定义TLR连接和信号传导在体外小胶质细胞对A?反应中的作用,(2)确定A?辅助受体在促进TLR信号传导中的作用,以及(3)确定A?-TLR信号传导对体内阿尔茨海默病病理学的影响。了解小胶质细胞与A?相互作用的机制,并确定参与这些相互作用的受体,将为这些细胞在AD发病机制中的作用提供有价值的见解,并可能确定AD中的治疗靶点,以促进小胶质细胞清除A?,同时下调其神经毒性作用。公共卫生相关性:在阿尔茨海默病(AD)中,小胶质细胞与淀粉样蛋白肽的相互作用会促进慢性无菌炎症,导致神经元变性、淀粉样蛋白沉积增加和疾病进展。了解小胶质细胞与淀粉样蛋白相互作用的机制,并确定参与促进炎症的受体,将为这些细胞在AD发病机制中的作用提供有价值的见解,并可能通过促进小胶质细胞清除淀粉样蛋白的能力,同时下调其有害和神经毒性作用,将其用作AD的治疗靶点。
英文摘要
DESCRIPTION (provided by applicant): Microglia are the principal innate immune cells of the brain. In Alzheimer's disease (AD) these cells bind ¿-amyloid (A¿) and accumulate at sites of A¿ deposition, including senile plaques. Microglial interactions with A¿ promote a chronic inflammatory response characterized by the production of pro-inflammatory cytokines and chemokines, reactive oxygen and nitrogen species, and complement proteins. This sterile inflammation is maintained by persistent microglial activation by A¿ and leads to neuronal degeneration and increased A¿ deposition and therefore promotes disease progression. The receptors that bind A¿ and the signaling pathways triggered by A¿ that promote chronic inflammation are not fully understood. Our long-term goals are to identify the molecular mechanisms of microglial activation by A¿ and the impact of these pathways on AD pathogenesis. We hypothesize that Toll-like receptors (TLR), an evolutionarily ancient family of pattern recognition receptors that detect microbial ligands, initiate and maintain the microglial inflammatory response to A¿. This hypothesis is based on preliminary findings that targeted deletion of the TLR signaling adaptor MyD88 abrogates microglial inflammatory responses to A¿ in vitro and in vivo. In this proposal, we will define the TLRs and co-receptors responsible for initiating this signaling, their impact on microglial inflammatory responses and the implications for disease. Specifically, we will (1) Define the role of TLR ligation and signaling on microglial responses to A¿ in vitro, (2) Determine the role of A¿ co-receptors in facilitating TLR signaling, and (3) Determine the impact of A¿-TLR signaling on Alzheimer's disease pathology in vivo. Understanding the mechanism(s) of microglial interactions with A¿ and identifying the receptors involved in these interactions will provide valuable insight into the role of these cells in the pathogenesis of AD and potentially identify therapeutic targets in AD to promote microglial clearance of A¿ while downregulating their neurotoxic effects. PUBLIC HEALTH RELEVANCE: In Alzheimer's disease (AD), microglial interactions with ¿-amyloid peptide promote chronic sterile inflammation that leads to neuronal degeneration, increased ¿-amyloid deposition and disease progression. Understanding the mechanisms of microglial interactions with ¿-amyloid and identifying the receptors involved in promoting inflammation will provide valuable insight into the role of these cells in the pathogenesis of AD and possibly allow the use of microglia as therapeutic targets for AD by promoting their ability to clear ¿-amyloid while downregulating their harmful and neurotoxic effects.
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