Suppr超能文献

泌尿道感染发病过程中细胞内细菌群落中大肠杆菌的代谢需求

Metabolic Requirements of Escherichia coli in Intracellular Bacterial Communities during Urinary Tract Infection Pathogenesis.

作者信息

Conover Matt S, Hadjifrangiskou Maria, Palermo Joseph J, Hibbing Michael E, Dodson Karen W, Hultgren Scott J

机构信息

Department of Molecular Microbiology and Center for Women's Infectious Disease Research, Washington University School of Medicine, St. Louis, Missouri, USA.

Department of Molecular Microbiology and Center for Women's Infectious Disease Research, Washington University School of Medicine, St. Louis, Missouri, USA

出版信息

mBio. 2016 Apr 12;7(2):e00104-16. doi: 10.1128/mBio.00104-16.

Abstract

UNLABELLED

Uropathogenic Escherichia coli (UPEC) is the primary etiological agent of over 85% of community-acquired urinary tract infections (UTIs). Mouse models of infection have shown that UPEC can invade bladder epithelial cells in a type 1 pilus-dependent mechanism, avoid a TLR4-mediated exocytic process, and escape into the host cell cytoplasm. The internalized UPEC can clonally replicate into biofilm-like intracellular bacterial communities (IBCs) of thousands of bacteria while avoiding many host clearance mechanisms. Importantly, IBCs have been documented in urine from women and children suffering acute UTI. To understand this protected bacterial niche, we elucidated the transcriptional profile of bacteria within IBCs using microarrays. We delineated the upregulation within the IBC of genes involved in iron acquisition, metabolism, and transport. Interestingly, lacZ was highly upregulated, suggesting that bacteria were sensing and/or utilizing a galactoside for metabolism in the IBC. A ΔlacZ strain displayed significantly smaller IBCs than the wild-type strain and was attenuated during competitive infection with a wild-type strain. Similarly, a galK mutant resulted in smaller IBCs and attenuated infection. Further, analysis of the highly upregulated gene yeaR revealed that this gene contributes to oxidative stress resistance and type 1 pilus production. These results suggest that bacteria within the IBC are under oxidative stress and, consistent with previous reports, utilize nonglucose carbon metabolites. Better understanding of the bacterial mechanisms used for IBC development and establishment of infection may give insights into development of novel anti-virulence strategies.

IMPORTANCE

Urinary tract infections (UTIs) are one of the most common bacterial infections, impacting mostly women. Every year, millions of UTIs occur in the U.S. with most being caused by uropathogenic E. coli(UPEC). During a UTI, UPEC invade bladder cells and form an intracellular bacterial community (IBC) that allows for the bacteria to replicate protected from the host immune response. In this study, we investigated genes that are expressed by UPEC within the IBC and determined how they contribute to the formation of this specialized community. Our findings suggest that galactose is important for UPEC growth in the IBC. Additionally, we found that a gene involved in oxidative stress is also important in the regulation of a key factor needed for UPEC invasion of bladder cells. These results may open the door for the development of treatments to diminish UTI frequency and/or severity.

摘要

未加标签

尿路致病性大肠杆菌(UPEC)是超过85%的社区获得性尿路感染(UTI)的主要病原体。感染的小鼠模型表明,UPEC可通过1型菌毛依赖性机制侵入膀胱上皮细胞,避免TLR4介导的胞吐过程,并逃逸到宿主细胞质中。内化的UPEC可克隆复制成由数千个细菌组成的生物膜样细胞内细菌群落(IBC),同时避开许多宿主清除机制。重要的是,在患有急性UTI的妇女和儿童的尿液中已发现IBC。为了解这个受保护的细菌生态位,我们使用微阵列阐明了IBC内细菌的转录谱。我们确定了IBC内参与铁获取、代谢和转运的基因的上调情况。有趣的是,lacZ高度上调,表明细菌在IBC中感知和/或利用半乳糖苷进行代谢。与野生型菌株相比,ΔlacZ菌株形成的IBC明显更小,并且在与野生型菌株的竞争性感染中减弱。同样,galK突变体导致IBC更小且感染减弱。此外,对高度上调的基因yeaR的分析表明,该基因有助于抗氧化应激和1型菌毛的产生。这些结果表明,IBC内的细菌处于氧化应激状态,并且与先前的报道一致,利用非葡萄糖碳代谢物。更好地理解用于IBC形成和感染建立的细菌机制可能会为开发新的抗毒力策略提供思路。

重要性

尿路感染(UTI)是最常见的细菌感染之一,主要影响女性。在美国,每年发生数百万例UTI,大多数由尿路致病性大肠杆菌(UPEC)引起。在UTI期间,UPEC侵入膀胱细胞并形成细胞内细菌群落(IBC),使细菌能够在免受宿主免疫反应的情况下进行复制。在这项研究中,我们调查了UPEC在IBC内表达的基因,并确定它们如何有助于形成这个特殊的群落。我们的研究结果表明,半乳糖对于UPEC在IBC中的生长很重要。此外,我们发现一个参与氧化应激的基因在调节UPEC侵入膀胱细胞所需的关键因子方面也很重要。这些结果可能为开发减少UTI频率和/或严重程度的治疗方法打开大门。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/800d/4959519/58fe5aa50e95/mbo0021627710001.jpg

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验