Molecular Mechanisms for Antiviral Signal Activation by MDA5 and RIG-I
Molecular Mechanisms for Antiviral Signal Activation by MDA5 and RIG-I
批准号:
8760157
负责人:
Sun Hur
金额:
$43.9万
依托单位国家:
美国
项目类别:
财政年份:
2014
资助国家:
美国
项目状态:
已结题
起止时间:
2014-05-15 至 2019-04-30
关键词:
ATP HydrolysisAddressAntiviral AgentsArchitectureAutoimmune ProcessBiochemicalBiological AssayBiological ModelsCaspaseCell DeathCellsCommitComplexConflict (Psychology)DataDetectionDevelopmentDiseaseDouble-Stranded RNAElectron MicroscopyEventFamilyFilamentGoalsHIVHomoHybridsImmuneImmune System DiseasesImmune responseImmune systemImmunotherapyInfectionInflammatoryInfluenza A Virus, H1N1 SubtypeInterferon Type IInvadedLengthLinkMediatingMolecularNatural ImmunityPathogen detectionPathogenesisPathway interactionsPattern recognition receptorPolyubiquitinProcessRNA Recognition MotifRegulationResearchRoleSevere Acute Respiratory SyndromeSignal PathwaySignal TransductionStructural ModelsStructureTestingVaccine TherapyValidationViralVirusVirus Diseasesantimicrobialbaseglobal healthin vitro Assayinfluenzavirusinnovationmicrobialnovelnovel therapeuticspandemic diseasepathogenprotein aggregationpublic health relevancereceptorresponsetherapeutic targettransmission processviral RNAviral detection
中文摘要
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英文摘要
DESCRIPTION (provided by applicant): Pattern Recognition Receptors in the innate immune system serve as the first line of defense against pathogen infection. They recognize conserved molecular features commonly associated with pathogens and rapidly elicit anti-microbial immune response. One important family of such receptors are viral RNA receptors, RIG-I and MDA5, which cooperate with their common adaptor, MAVS, to activate the type I interferon response. The interaction between RIG-I/MDA5 and MAVS represents a committed step in initiation of the antiviral immune response and is often subject to multiple layers of regulation from both the host and invading viruses. Despite the importance, the molecular mechanism by which RIG-I and MDA5 interact with MAVS and link the upstream viral-detection events to the downstream signaling event is yet unclear. This is partly due to challenges of analyzing protein aggregation or oligomerization, which occurs during signal activation. We here propose to investigate the signal activation process of RIG-I, MDA5 and MAVS using an innovative "hybrid" approach that systematically integrates structural and biochemical analysis with cellular functional validation. In particular, we will focus on two key steps: (i) homo-oligomerization of te signaling domains (tandem caspase activation recruitment domain, 2CARD) of RIG-I and MDA5, which occurs upon their viral RNA recognition, and (ii) filament formation of MAVS CARD, which occurs upon its interaction with RIG-I/MDA5 2CARD oligomers. We will start with a model system consisting of the isolated signaling domains (i.e. 2CARD and CARD) to understand the detailed molecular and structural mechanisms for how RIG-I and MDA5 2CARDs oligomerize (Aim 1) and how the 2CARD oligomers trigger MAVS CARD filament formation (Aim 2). We will then investigate how the oligomerization and interactions among the signaling domains are regulated in the context of full-length RIG-I and MDA5 during viral RNA recognition (Aim 3). This proposal builds upon our novel findings, including filament formation of MDA5 and RIG-I (Peisley al, PNAS, 2010 & 2011; Mol Cell, 2013), the first crystal structure of the MDA5:dsRNA complex (Wu et al, Cell, 2013) and the recent, unpublished structures of the RIG-I 2CARD tetramer (in Aim 1A) and the MAVS CARD filament (in Aim 2A). These findings provide unprecedented opportunities to address key unresolved issues on the signal activation process of RIG-I and MDA5, both long-debated issues in the field and new questions arising from our discoveries. We expect that the proposed research would reveal novel molecular principles underlying the "assembly-mediated" signaling mechanism, an emerging paradigm for signal transduction in innate immunity and cell death. Furthermore, our mechanistic understanding could provide novel therapeutic strategies to harness the RIG-I/MDA5/MAVS pathways in treatment of immune disorders and development of antiviral or anticancer vaccine therapies.
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会议论文
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批准号:9262830
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批准号:10684780
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Structural and functional analyses of the RIG-I filament in innate immunity
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资助金额:$43.98万
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Molecular mechanism of RIG-I and RIPLET in antiviral signaling
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批准号:10254221
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资助金额:$53.1万
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依托单位:
Molecular Mechanisms for Antiviral Signal Activation by MDA5 and RIG-I
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批准号:9054072
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项目类别:
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资助金额:$44.25万
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负责人:Sun Hur
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依托单位:
Molecular mechanism of RIG-I and RIPLET in antiviral signaling
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批准号:10470811
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项目类别:
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资助金额:$53.1万
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财政年份:2014
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负责人:Sun Hur
-
依托单位:
海外基金