Modeling mechanisms of Shigella pathogenesis in yeast
Modeling mechanisms of Shigella pathogenesis in yeast
批准号:
8093565
负责人:
CAMMIE LESSER
金额:
$10.0万
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:
2010-07-19 至 2011-12-30
关键词:
Animal ModelBacterial GenomeBacterial ProteinsBioinformaticsBiological AssayBiological ModelsBiomedical EngineeringCell physiologyCellsCellular biologyChlamydiaCo-ImmunoprecipitationsComputer softwareCoupledDataDiseaseDominant-Negative MutationEpithelial CellsEukaryotaGene ExpressionGeneticGenomeGenomicsGenus MycobacteriumHumanImmunofluorescence MicroscopyIndirect ImmunofluorescenceIndividualInfectionInvestigationLaboratoriesLiquid ChromatographyMediatingModelingMolecularMonitorPathogenesisPathway interactionsPatternPhenotypePlaque AssayProtein MicrochipsProteinsProteomicsPublic HealthRNA InterferenceResearch PersonnelResearch Project GrantsRoboticsRoleSaccharomyces cerevisiaeShigellaSystemSystems BiologyTechniquesTechnologyTestingTimeTransmission Electron MicroscopyWorkYeastsantimicrobialdata miningdesigngenome wide association studygenome-wideinterdisciplinary approachinterestmicrobialmultidisciplinarynovelpathogenpathogenic bacteriaphysiologic modelprogramsprotein complexresearch studyresponsesoftware developmenttandem mass spectrometrytool
中文摘要
致病菌的基因组正在迅速测序。一个主要的挑战是设计
英文摘要
The genomes of pathogenic bacteria are being rapidly sequenced. A major challenge is to devise
efficient, sensitive, and specific assays to screen bacterial genomes to identify pathogenic proteins
and determine their specific roles in pathogenesis. Although yeast cannot serve as a physiologic
model of human infection, our laboratory and others have recently established Saccharomyces
cerevisiae as a powerful model system to study bacterial proteins that target potentially conserved
eukaryotic host cell processes. Preliminary evidence presented in this proposal demonstrates that
toxic yeast phenotypes conferred by Shigella proteins are a sensitive and specific screen for
proteins that target host cell processes. Given its relatively small genome, genetic tractability, well-
developed post-genomic tools, conservation of many basic cellular processes, and the wealth of
available systematic data S. cerevisiae is an ideal model organism for multidisciplinary systems-
biology studies. In response to PA-02-011, "Bioengineering Research Grants," we propose to
develop and validate a multidisciplinary, integrative, systems approach in yeast involving genomics,
proteomics, cell biology and novel bioinformatics software development to identify host cell
processes targeted by three Shigella proteins, IpgB, OspCI and OspF. Evidence suggests that
each of these proteins is delivered directly into host cells during infection, but little is known about
their functions within. We hypothesize that the genome-wide screens described in this proposal will
result in the characterization of the molecular roles in pathogenesis of each of these proteins.
Experiments in this proposal focus on proteins from the genetically manipulable Shigella so that we
can relatively easily test hypotheses in physiologic models of disease. However, once optimized,
this multidisciplinary approach should be applicable to study any microbial pathogen that targets
intracellular host cell processes, especially pathogens that are dangerous to grow or difficult to
genetically manipulate like Mycobacterium and Chlamydia.
This work is important is relevant to public health issues since by investigations mechanisms
that bacterial pathogens used to cause disease, we will gain information that will help develop new
antimicrobials to treat these infections. Furthermore, we are interested in developing a new and
efficient way to study bacterial pathogens that are dangerous and difficult to study in other ways.
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海外基金