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Escherichia coli CFT073 Fitness Factors during Urinary Tract Infection: Identification Using an Ordered Transposon Library

机译:大肠杆菌CFT073在尿路感染期间的健身因素:使用有序的转座子库识别

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Urinary tract infections (UTI), the second most diagnosed infectious disease worldwide, are caused primarily by uropathogenic Escherichia coli (UPEC), placing a significant financial burden on the health care system. High-throughput transposon mutagenesis combined with genome-targeted sequencing is a powerful technique to interrogate genomes for fitness genes. Genome-wide analysis of E. coli requires random libraries of at least 50,000 mutants to achieve 99.99% saturation; however, the traditional murine model of ascending UTI does not permit testing of large mutant pools due to a bottleneck during infection. To address this, an E. coli CFT073 transposon mutant ordered library of 9,216 mutants was created and insertion sites were identified. A single transposon mutant was selected for each gene to assemble a condensed library consisting of 2,913 unique nonessential mutants. Using a modified UTI model in BALB/c mice, we identified 36 genes important for colonizing the bladder, including purB , yihE , and carB . Screening of the condensed library in vitro identified yigP and ubiG to be essential for growth in human urine. Additionally, we developed a novel quantitative PCR (qPCR) technique to identify genes with fitness defects within defined subgroups of related genes (e.g., genes encoding fimbriae, toxins, etc.) following UTI. The number of mutants within these subgroups circumvents bottleneck restriction and facilitates validation of multiple mutants to generate individual competitive indices. Collectively, this study investigates the bottleneck effects during UTI, provides two techniques for evading those effects that can be applied to other disease models, and contributes a genetic tool in prototype strain CFT073 to the field.IMPORTANCE Uropathogenic Escherichia coli strains cause most uncomplicated urinary tract infections (UTI), one of the most common infectious diseases worldwide. Random transposon mutagenesis techniques have been utilized to identify essential bacterial genes during infection; however, this has been met with limitations when applied to the murine UTI model. Conventional high-throughput transposon mutagenesis screens are not feasible because of inoculum size restrictions due to a bottleneck during infection. Our study utilizes a condensed ordered transposon library, limiting the number of mutants while maintaining the largest possible genome coverage. Screening of this library in vivo , and in human urine in vitro , identified numerous candidate fitness factors. Additionally, we have developed a novel technique using qPCR to quantify bacterial outputs following infection with small subgroups of transposon mutants. Molecular approaches developed in this study will serve as useful tools to probe in vivo models that are restricted by anatomical, physiological, or genetic bottleneck limitations.
机译:尿路感染(UTI)是全球第二次诊断的传染病,主要是由尿羟疗法大肠杆菌(UPEC)引起的,为医疗保健系统提供了重大的财务负担。高通量转发诱变结合基因组靶向测序是一种强大的技术,用于询问健身基因的基因组。大肠杆菌的基因组分析需要至少50,000个突变体的随机文库,以达到99.99%的饱和度;然而,传统的升序UTI的鼠模型不允许由于感染期间的瓶颈测试大型突变池。为了解决这个问题,产生了9,216个突变体的大肠杆菌CFT073转座突变体有序文库,并鉴定了插入位点。为每个基因选择单个转座子突变体,以组装由2,913个独特的非均态突变体组成的浓缩文献。在Balb / C小鼠中使用修改的UTI模型,我们确定了36个基因,用于殖民化膀胱,包括PurB,Yihe和Carb。筛选在体外鉴定的yigp和Ubig的缩合文库对人尿中的生长至关重要。另外,我们开发了一种新的定量PCR(QPCR)技术,用于在UTI之后确定的相关基因的定义子组(例如,编码FIMBRIAE,毒素等)的定义亚组内具有适应性缺陷的基因。这些亚组内的突变体的数量避免瓶颈限制,并有助于验证多个突变体以产生个性竞争指标。集体,本研究调查UTI期间的瓶颈效应,提供了两种用于逃避可应用于其他疾病模型的效果的技术,并在原型菌株CFT073中提供遗传工具。分析尿羟基菌大肠杆菌菌株引起最简单的尿路感染(UTI)是全世界最常见的传染病之一。随机转座子诱变技术已被利用在感染期间鉴定必需的细菌基因;然而,当应用于鼠UTI模型时,这一直存在限制。由于感染期间的瓶颈,常规的高通量转座子诱变屏幕是不可行的。我们的研究利用浓缩有序的转座子库,限制突变体的数量,同时保持最大可能的基因组覆盖率。在体内筛选该文库,在体外尿液中,确定了众多候选健身因素。此外,我们已经开发了一种使用QPCR的新技术,以量化细菌产量在用传递的转座子突变体的小亚组进行感染后。本研究中开发的分子方法将作为有用的工具探测体内模型,这些工具受解剖学,生理或遗传瓶颈限制的限制。

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