Molecular determinants of oxidative stress in Salmonella pathogenesis
Molecular determinants of oxidative stress in Salmonella pathogenesis
批准号:
10468719
负责人:
Andres Vazquez-Torres
金额:
$42.82万
依托单位国家:
美国
项目类别:
财政年份:
2018
资助国家:
美国
项目状态:
已结题
起止时间:
2018-09-24 至 2024-08-31
关键词:
ATP Synthesis PathwayAcetatesAgingAnimal ModelAntibiotic TherapyAntioxidantsAttenuatedBacteriaCancer BiologyCarbonCell membraneCell modelCellsCessation of lifeCommunicable DiseasesCysteineCytochrome c ReductaseDNA Double Strand BreakDataDevelopmentDiabetes MellitusDiarrheaDiseaseDisulfidesElectron TransportEnzymesEquilibriumFaceFermentationFutureGenesGlutathioneGlycolysisHIVHost DefenseHumanHydrogen PeroxideIndividualInfectionInvestigationKnowledgeLeadLearningLesionLibrariesLifeLightMalignant NeoplasmsMass Spectrum AnalysisMediatingMembraneMetabolicMetabolismMetalsModelingMolecularMusMutationNADHNADH dehydrogenase (ubiquinone)NADPNADPH OxidaseOxidasesOxidation-ReductionOxidative StressOxidoreductasePathogenesisPathogenicityPathway interactionsPentosephosphate PathwayPeriplasmic ProteinsPersonsPhagocytesPharmaceutical PreparationsPhosphoglycerate MutasePhosphotransferasesPlayProcessProteinsReactive Oxygen SpeciesResearchResistanceRoleSalmonellaSalmonella entericaSalmonella infectionsSuccinatesTXN geneTestingTyphoid FeverVirulentantimicrobialcell envelopecofactorcombatdeep sequencingdisulfide bondenv Gene Productsfightinggenotoxicityin vivoinnovationinsightmacrophagemetabolomicsmicrobialmicroorganismmutantnoveloxidationoxidative damagepathogenic bacteriaperiplasmrespiratoryresponsesingle cell analysis
中文摘要
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英文摘要
PROJECT SUMMARY/ ABSTRACT
We have made the unexpected discovery that fermentation contributes to Salmonella's antioxidant defenses,
an observation with wide ranging implications for defense against oxidative stress, well beyond bacteria.
Infectious diarrhea afflicts a billion people a year and is responsible for 4% of all human deaths. Many of these
infections are caused by one of the 2,500 serovars of nontyphoidal Salmonella enterica, which can inflict life-
threatening systemic complications in the very young, very old, and HIV-infected individuals. Oxidative stress
emanating from the enzymatic activity of the NADPH oxidase is one of the most potent host defenses
Salmonella face during their associations with professional phagocytic cells. Genotoxicity that ensues from
Fenton-mediated DNA double strand breaks together with cellular malfunctions associated with the oxidation of
cysteine residues and metal cofactors in proteins constitute the paradigm for how oxidative stress kills
Salmonella and numerous other bacterial pathogens. However, despite their central role in resistance to
salmonellosis, the relative importance of the various mechanisms by which reactive oxygen species inflict anti-
Salmonella activity is poorly understood. Our understanding of the adaptive responses that protect Salmonella
against oxidative stress is similarly superficial. A screen of mutants in response to hydrogen peroxide, one of the
most important effectors of the NADPH oxidase, revealed previously unanticipated roles for central metabolism
and the electron transport chain in the hydrogen peroxide-mediated killing of Salmonella. Our preliminary data
suggest oxidation of cell envelope proteins and plasmolysis-like lesions (i.e., separation of inner and outer
membranes) as previously unsuspected steps in the killing of Salmonella during oxidative stress. These
investigations offer an innovative framework for how NADPH oxidase inflicts potent anti-Salmonella activity
during the innate response of macrophages. We will test the hypothesis that fermentation contributes to
Salmonella's antioxidant defenses by assisting with ATP synthesis, balancing redox, and enabling disulfide bond
formation in periplasmic proteins, thereby protecting the cell envelope from lethal damage by reactive oxygen
species generated by the NADPH oxidase. Specifically, we will characterize the role fermentation plays in the
antioxidant defenses of typhoidal and nontyphoidal Salmonella, elucidate the mechanism by which oxidative
stress promotes fermentation, and determine how intracellular Salmonella is killed by the NADPH oxidase. Not
only will this knowledge illuminate key aspects of Salmonella pathogenesis, but should also provide insights into
unique and shared antioxidant defenses of various Salmonella serovars. Our research could ultimately have an
impact on fields as diverse as microbial pathogenesis, aging, diabetes, or cancer biology for which oxidative
stress is an intrinsic component. Drugs that specifically inhibit bacterial glycolytic enzymes and fermentative
pathways may lead to the development of novel antibiotic treatments. Future Salmonella countermeasures could
also explore strategies that increase respiratory activity as a means to foment oxidative killing.
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DOI:
10.1016/j.jbc.2022.102130
发表时间:
2022-07
期刊:
JOURNAL OF BIOLOGICAL CHEMISTRY
影响因子:
4.8
作者:
[Kim, Ju-Sim, Liu, Lin, Davenport, Bennett, Kant, Sashi, Morrison, Thomas E., Vazquez-Torres, Andres]
通讯作者:
Vazquez-Torres, Andres
DOI:
10.3389/fmicb.2020.582202
发表时间:
2020
期刊:
Frontiers in microbiology
影响因子:
5.2
作者:
[Li Y, Salazar JK, He Y, Desai P, Porwollik S, Chu W, Paola PS, Tortorello ML, Juarez O, Feng H, McClelland M, Zhang W]
通讯作者:
Zhang W
DOI:
10.1371/journal.ppat.1011441
发表时间:
2023-06
期刊:
PLoS pathogens
影响因子:
6.7
作者:
[]
通讯作者:
Discovery of Salmonella trehalose phospholipids reveals functional convergence with mycobacteria.
沙门氏菌海藻糖磷脂的发现揭示了与分枝杆菌的功能趋同。
DOI:
10.1084/jem.20181812
发表时间:
2019
期刊:
The Journal of experimental medicine
影响因子:
--
作者:
[Reinink,Peter, Buter,Jeffrey, Mishra,VivekK, Ishikawa,Eri, Cheng,Tan-Yun, Willemsen,PeterTJ, Porwollik,Steffen, Brennan,PatrickJ, Heinz,Eva, Mayfield,JacobA, Dougan,Gordon, vanEls,CécileA, Cerundolo,Vincenzo, Napolitani,Giorgio, Yamas]
通讯作者:
Yamas
DOI:
10.1080/19490976.2021.1997294
发表时间:
2022-01
期刊:
Gut microbes
影响因子:
12.2
作者:
[Cohen H, Adani B, Cohen E, Piscon B, Azriel S, Desai P, Bähre H, McClelland M, Rahav G, Gal-Mor O]
通讯作者:
Gal-Mor O
共 8 条
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批准号:10487785
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财政年份:2022
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依托单位:
BLRD Research Career Scientist Award Application
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批准号:10514615
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依托单位:
BLRD Research Career Scientist Award Application
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Analysis of regulatory networks in Salmonella pathogenesis.
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批准号:10262941
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Molecular determinants of oxidative stress in Salmonella pathogenesis
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批准号:9789824
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Molecular determinants of oxidative stress in Salmonella pathogenesis
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Molecular Analysis of Bacterial Adaptive Response to Host Reactive Species
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Molecular Analysis of Bacterial Adaptive Response to Host Reactive Species
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批准号:9898263
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Molecular Analysis of Bacterial Adaptive Response to Host Reactive Species
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Molecular Analysis of Bacterial Adaptive Response to Host Reactive Species
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Mechanism of bukholderia pseudomallei drug tolerance
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Mechanism of bukholderia pseudomallei drug tolerance
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O2-Dependent Host Defenses in Resistance to Burkholdria
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O2-Dependent Host Defenses in Resistance to Burkholdria
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海外基金