Regulation of the physiologic and pathologic activation of the NLRP3-inflammasome
Regulation of the physiologic and pathologic activation of the NLRP3-inflammasome
批准号:
8456181
负责人:
JOSEPH A DUNCAN
金额:
$40.32万
依托单位国家:
美国
项目类别:
财政年份:
2010
资助国家:
美国
项目状态:
已结题
起止时间:
2010-05-01 至 2015-04-30
关键词:
ATP HydrolysisATP phosphohydrolaseAffectAntibioticsApoptosisApoptoticBindingBinding ProteinsBiochemicalCaspase-1Cathepsins BCell-Free SystemCellsComplexCultured CellsCysteine ProteaseDevelopmentDisease ProgressionEventFeverG-substrateGTP-Binding ProteinsGene ComponentsGenesHemolysinHumanImmuneImmune responseImmune systemImmunologicsIn VitroInfectionInflammationInflammatoryInflammatory ResponseInheritedInjuryInterleukin-12Interleukin-18LeadLifeMacromolecular ComplexesMediatingMolecularMorbidity - disease rateMusMutationNecrosisNucleotidesPanton-Valentine leukocidinPathogenesisPathologicPeptide HydrolasesPhysiologicalPneumoniaProcessProteinsProteolytic ProcessingRecombinantsRegulationRoleSignal PathwaySignal TransductionStaphylococcus aureusStimulusSyndromeSystemTissuesToxinVirulence Factorscomputerized data processingcytokineguanine nucleotide binding proteinhuman diseaseimprovedinhibitor/antagonistknock-downlung injurymethicillin resistant Staphylococcus aureusmortalitymouse modelnovelpathogenpreventpublic health relevancereconstitutionresponsescaffoldsmall hairpin RNA
中文摘要
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英文摘要
DESCRIPTION (provided by applicant): The ability to recognize pathogens and initiate inflammatory and immunologic processes to control their spread relies on innate immune system signaling. One of the most recently identified pathogen-sensing signaling pathways involves the activation of the inflammasome, a macromolecular complex responsible for proteolytic processing of several immature cytokines (IL- 12 and IL-18 in particular). The ATP-binding protein NLRP3 acts as a central scaffold during in the assembly of the inflammasome. In addition to cytokine processing, we have recently found that signaling through NLRP3 activates a novel cell death program with morphologic and biochemical features of necrosis. The NLRP3-inflammasome can be activated by numerous stimuli known to induce IL-12 secretion, suggesting that the physiologic role of NLRP3 is to integrate the response to a range of pro-inflammatory triggers. Mutations in the nucleotide-binding domain of NLRP3 can cause inherited periodic fever syndromes. We have also recently discovered that some critical virulence factors from Staphylococcus aureus activate the NLRP3 inflammasome as well. S. aureus that express these virulence factors can cause with severe necrotizing pneumonias that are characterized by systemic inflammatory response and tissue necrosis. We believe activation of NLRP3 by mutation and pathogen-dervived virulence factors represent pathologic events that lead to dysregulated inflammation and progression diseases associated with these stimuli. We now propose to further investigate both the molecular mechanisms regulating NLRP3 activation and its role in the pathogenesis of S. aureus infections. These studies will provide crucial information in understanding inflammatory signaling processes involved in the pathogenesis of a huge array of human diseases.
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