CRISPR/Cas systems in bacterial gene regulation and virulence
CRISPR/Cas systems in bacterial gene regulation and virulence
批准号:
8793757
负责人:
DAVID S WEISS
金额:
$44.12万
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:
2014-02-01 至 2019-01-31
关键词:
BacteriaBacterial GenesBacterial RNABacteriophagesBacteroides fragilisBindingBiochemicalBiological ModelsBiologyCampylobacter jejuniCellsCessation of lifeClustered Regularly Interspaced Short Palindromic RepeatsComplexDataDevelopmentDiseaseEpidemicFoundationsFrancisellaGene ExpressionGene Expression RegulationGeneticGenomeHealthHumanImmuneImmune responseIn VitroInfectionInflammatory ResponseInvadedKnowledgeLactobacillusLeadLipoproteinsMediatingMembraneMeningitisMessenger RNAModelingMolecularNeisseria meningitidisNervous System TraumaNucleic AcidsPathogenesisPhagosomesPlasmidsProteinsRNA InterferenceRepressionResearchRoleSignal TransductionSmall RNAStreptococcusStressSystemTimeToll-Like Receptor 2VirulenceWorkantimicrobialcombathuman BCAR1 proteinin vivoinsightinterestmRNA Transcript Degradationmacrophagenovelnovel therapeuticsnovel vaccinespathogenresearch studyresponsetrait
中文摘要
描述(由申请人提供):CRISPR/CAS系统最近被描述为介导细菌防御来自噬菌体或质粒的外来核酸的入侵,它们的目标是降解这些核酸(1,2)。这些系统以前还没有被证明可以靶向mRNA或控制内源基因的表达。我们证明了CRISPR/Cas蛋白Cas9靶向内源mRNA,揭示了一种新的细菌RNA沉默机制和遗传调控范式(3)。Cas9与2个小RNA一起发挥作用,抑制细胞内病原体新弗朗西斯氏菌的内源性细菌脂蛋白(BLP)(3)。由于BLP通过Toll样受体2(TLR2)(4,5)触发致炎的先天免疫反应,旨在对抗病原体,CRISPR/Cas介导的对BLP的抑制是新城疫霉菌抑制这种宿主反应的关键,也是体内毒力的关键)。有趣的是,我们的数据显示,当细菌在含有TLR2(3,6)的巨噬细胞吞噬体内时,Cas9调节系统被激活。在那里,细菌面临着大量诱导膜损伤的抗菌剂,我们假设这是诱导Cas9系统的触发因素,导致TLR2的逃避。Cas9由至少63个细菌(以及至少22个共生体)编码(3,8),我们已经证明了它在脑膜炎奈瑟菌毒力特征中的作用(3),而其他一些最近显示了在空肠弯曲菌中的作用(9)。这些数据表明,Cas9系统被广泛用于介导细菌病原体以及许多共生体与真核宿主的相互作用。由于Cas9靶向Fnovicida中的BLP基因是目前已知的唯一一个CRISPR/Cas介导的内源基因调控的例子,我们将使用这个模型来回答关于这个系统的作用机制以及控制其诱导的参数的基本问题。这将导致阐明管理CAS9和CRISPR/CAS生物学的基本原则。我们将研究脑膜炎奈瑟氏菌中的Cas9调控系统,以我们从新城疫杆菌实验中获得的见解为指导,可能有助于加强我们对两个系统中存在的核心成分的知识,以及识别潜在的差异。这项拟议的研究将对我们对Cas9、CRISPR/Cas系统、RNA沉默、基因调控机制、细菌毒力和先天免疫逃避的理解产生持续而强大的影响,并为更广泛地了解各种细菌病原体如何致病奠定基础。
英文摘要
DESCRIPTION (provided by applicant): CRISPR/Cas systems have recently been described to mediate bacterial defense against invading foreign nucleic acid derived from bacteriophages or plasmids, which they target for degradation (1, 2). These systems have not previously been shown to target mRNA or control endogenous gene expression. We demonstrated that the CRISPR/Cas protein Cas9 targets an endogenous mRNA, revealing a novel bacterial RNA silencing machinery and genetic regulatory paradigm (3). Cas9 functions with 2 small RNAs to repress an endogenous bacterial lipoprotein (BLP) in the intracellular pathogen Francisella novicida (3). Since BLPs trigger a proinflammatory innate immune response through Toll-like Receptor 2 (TLR2)(4, 5), aimed at combating pathogens, CRISPR/Cas-mediated repression of BLP is critical for F. novicida to dampen this host response and is critical for virulence in vivo 3, 6). Interestingly, our data show that the Cas9 regulatory system is activated when the bacteria are in the macrophage phagosome, which contains TLR2 (3, 6). There, the bacteria are confronted with numerous antimicrobials that induce membrane damage (7), which we hypothesize is the trigger for the induction of the Cas9 system, leading to evasion of TLR2. Cas9 is encoded by at least 63 bacterial pathogens (as well as at least 22 commensals)(3, 8), and we have demonstrated its role in virulence traits of Neisseria meningitidis (3), while others have recently shown a role in Campylobacter jejuni (9). These data suggest that the Cas9 system is broadly used to mediate the interaction of bacterial pathogens, as well as numerous commensals, with eukaryotic hosts. Since Cas9 targeting of a BLP mRNA in F. novicida is the only currently known example of CRISPR/Cas- mediated endogenous gene regulation, we will employ this model to answer fundamental questions about the mechanism of action of this system, as well as the parameters controlling its induction. This will lead to the elucidation of basic foundational principles governing Cas9 and CRISPR/Cas biology. We will study the Cas9 regulatory system in N. meningitidis, using the insights we gain from experiments with F. novicida as a guide, likely serving to both strengthen our knowledge of core components present in both systems, as well as identifying potential differences. The proposed research will have a sustained and powerful impact on our understanding of Cas9, CRISPR/Cas systems, RNA silencing, genetic regulatory mechanisms, bacterial virulence, and innate immune evasion, and lay the framework for a much broader knowledge of how diverse bacterial pathogens cause disease.
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