Proteus mirabilis UreR coordinates cellular functions required for urease activity.

IF 2.7 3区 生物学 Q3 MICROBIOLOGY Journal of Bacteriology Pub Date : 2024-04-18 Epub Date: 2024-03-27 DOI:10.1128/jb.00031-24
Madison J Fitzgerald, Melanie M Pearson, Harry L T Mobley
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Abstract

A hallmark of Proteus mirabilis infection of the urinary tract is the formation of stones. The ability to induce urinary stone formation requires urease, a nickel metalloenzyme that hydrolyzes urea. This reaction produces ammonia as a byproduct, which can serve as a nitrogen source and weak base that raises the local pH. The resulting alkalinity induces the precipitation of ions to form stones. Transcriptional regulator UreR activates expression of urease genes in a urea-dependent manner. Thus, urease genes are highly expressed in the urinary tract where urea is abundant. Production of mature urease also requires the import of nickel into the cytoplasm and its incorporation into the urease apoenzyme. Urease accessory proteins primarily acquire nickel from one of two nickel transporters and facilitate incorporation of nickel to form mature urease. In this study, we performed a comprehensive RNA-seq to define the P. mirabilis urea-induced transcriptome as well as the UreR regulon. We identified UreR as the first defined regulator of nickel transport in P. mirabilis. We also offer evidence for the direct regulation of the Ynt nickel transporter by UreR. Using bioinformatics, we identified UreR-regulated urease loci in 15 Morganellaceae family species across three genera. Additionally, we located two mobilized UreR-regulated urease loci that also encode the ynt transporter, implying that UreR regulation of nickel transport is a conserved regulatory relationship. Our study demonstrates that UreR specifically regulates genes required to produce mature urease, an essential virulence factor for P. mirabilis uropathogenesis.

Importance: Catheter-associated urinary tract infections (CAUTIs) account for over 40% of acute nosocomial infections in the USA and generate $340 million in healthcare costs annually. A major causative agent of CAUTIs is Proteus mirabilis, an understudied Gram-negative pathogen noted for its ability to form urinary stones via the activity of urease. Urease mutants cannot induce stones and are attenuated in a murine UTI model, indicating this enzyme is essential to P. mirabilis pathogenesis. Transcriptional regulation of urease genes by UreR is well established; here, we expand the UreR regulon to include regulation of nickel import, a function required to produce mature urease. Furthermore, we reflect on the role of urea catalysis in P. mirabilis metabolism and provide evidence for its importance.

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奇异变形杆菌 UreR 协调尿素酶活性所需的细胞功能。
奇异变形杆菌感染泌尿道的一个特征是形成结石。脲酶是一种能水解尿素的镍金属酶,它能诱导尿路结石的形成。这种反应会产生氨作为副产品,氨可以作为氮源和弱碱,提高局部的 pH 值。由此产生的碱性促使离子沉淀,形成结石。转录调节因子 UreR 以尿素依赖的方式激活尿素酶基因的表达。因此,尿素酶基因在尿素丰富的尿路中高度表达。生产成熟的尿素酶还需要将镍输入细胞质,并将其结合到尿素酶辅酶中。尿素酶附属蛋白主要从两种镍转运体之一获得镍,并促进镍的结合形成成熟的尿素酶。在这项研究中,我们进行了全面的 RNA 序列分析,以确定 P. mirabilis 尿素诱导的转录组以及 UreR 调控子。我们发现 UreR 是 mirabilis 中第一个确定的镍转运调节因子。我们还提供了 UreR 直接调控 Ynt 镍转运体的证据。利用生物信息学,我们在三个属的 15 个摩根菌科物种中确定了受 UreR 调节的尿素酶位点。此外,我们还找到了两个受 UreR 调节的脲酶基因座,它们也编码 ynt 转运体,这意味着 UreR 对镍转运的调节是一种保守的调节关系。我们的研究表明,UreR特异性调控产生成熟尿素酶所需的基因,而成熟尿素酶是奇异变形杆菌尿路致病的一个重要毒力因子:导尿管相关性尿路感染(CAUTIs)占美国急性院内感染的 40% 以上,每年产生 3.4 亿美元的医疗费用。米氏变形杆菌是 CAUTIs 的主要致病菌,它是一种未被充分研究的革兰氏阴性病原体,因其能通过尿素酶的活性形成尿路结石而闻名。尿素酶突变体不能诱发结石,在小鼠UTI模型中也会减弱,这表明这种酶对奇异变形杆菌的致病机制至关重要。UreR 对尿素酶基因的转录调控已得到证实;在此,我们扩展了 UreR 调控子,将镍导入的调控也包括在内,镍导入是产生成熟尿素酶所需的功能。此外,我们还思考了尿素催化在奇异螺旋藻新陈代谢中的作用,并为其重要性提供了证据。
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来源期刊
Journal of Bacteriology
Journal of Bacteriology 生物-微生物学
CiteScore
6.10
自引率
9.40%
发文量
324
审稿时长
1.3 months
期刊介绍: The Journal of Bacteriology (JB) publishes research articles that probe fundamental processes in bacteria, archaea and their viruses, and the molecular mechanisms by which they interact with each other and with their hosts and their environments.
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