Role of SipC in manipulating host signaling during Salmonella infection
Role of SipC in manipulating host signaling during Salmonella infection
批准号:
8644456
负责人:
Carissa B Meyer
金额:
$1.84万
依托单位:
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:
2014-04-01 至 2014-07-25
关键词:
ActinsAffectAntibodiesBacteriaBacterial Attachment SiteBacterial ProteinsBindingBiochemicalBiologicalBiological AssayC-terminalCell ExtractsCell membraneCellsComplexCytoplasmCytoskeletal ModelingCytoskeletonCytosolDevelopmentDiseaseEnterobacteriaceaeEpithelial CellsFoodFoundationsGastroenteritisGram-Negative BacteriaGrowthHela CellsHost Defense MechanismImmunofluorescence ImmunologicIn VitroInfectionIntestinesInvadedMAP4K4 geneMeasuresMediatingMembraneMembrane Protein TrafficMolecularPathogenesisPhosphorylationPhosphotransferasesPlayPrecipitationProcessProteinsRNA InterferenceRoleSalmonellaSalmonella entericaSalmonella infectionsScaffolding ProteinSepticemiaSignal PathwaySignal TransductionSiteStagingStructureSyringesTestingType III Secretion System PathwayTyphoid FeverWaterWorkYeastsbaseclinically relevantfilaminglobal healthhuman diseaseinsightmutantnovelnovel strategiesnovel therapeuticspathogenpolymerizationpreventpublic health relevanceresearch studyscaffoldupstream kinaseuptakeyeast two hybrid system
中文摘要
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英文摘要
Salmonellae enterica are a genus of Gram-negative enteric bacteria that cause a range of human
diseases, from gastroenteritis to typhoid fever and septicemia. Salmonella spp. present a significant global
health burden, and development of new therapies to treat and prevent disease will require a detailed
understanding of the molecular mechanisms underlying Salmonella pathogenesis.
Salmonella is spread through contaminated food and water, and bacterial invasion of non-phagocytic
intestinal epithelial cells is a key step in the establishment of infection. Salmonella bacteria induce their own
uptake and survive within host cells by injecting 'effector' proteins that manipulate actin dynamics and host
signaling directly into the host cell through a type III secretion system (T3SS). Coordination of multiple effectors
and their targets is essential for efficient invasion, but the underlying mechanisms are not well understood.
SipC is a core component of the T3SS that also functions as an effector. The studies outlined in this proposal
test the hypothesis that SipC scaffolds the assembly of signaling complexes that promote bacterial invasion
and intracellular survival.
Previous work in the lab identified more than dozen SipC-interacting proteins through a yeast-two-
hybrid screen, several of which directly bind or modulate actin. From this group, we have confirmed that filamin,
FHOD1, and MAP4K4 associate with SipC in HeLa cell extracts. In Aim 1, their function in actin reorganization
and bacterial uptake during infection will be characterized using RNAi in combination with immunofluorescence
and bacterial internalization assays. In addition, we will explore the role of SipC in regulating their localization
and activity through depletion/rescue assays using proteins deficient in binding to SipC.
Salmonella infection induces activation of Akt kinase to promote intracellular bacterial growth. We have
discovered that SipC binds directly to Akt and that the SipC interacting protein Exo70, a component of the
exocyst complex, is essential for Salmonella-induced activation of Akt. Aim 2 describes experiments to
characterize the roles of SipC and the exocyst complex in regulating Akt signaling. SipC mutants deficient in
binding to Akt will be used in deletion/complementation experiments to determine how SipC regulates the
localization, activation, and downstream signaling of Akt during infection. Co-precipitation and
immunofluorescence assays will be used to determine whether depletion of Exo70 affects recruitment of Akt or
its upstream kinases to sites of bacterial invasion and/or complex formation between Akt and upstream kinases.
Collectively, these studies will define a novel role for SipC as a scaffold for the assembly of host
proteins involved in actin reorganization and bacterial signaling during Salmonella infection. Importantly, these
results are likely to have broad implications for pathogenesis of Gram-negative bacteria and will serve as a
foundation for future research on bacterial pathogenesis.
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