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Carbon Starvation Induces the Expression of PprB-Regulated Genes in Pseudomonas aeruginosa

机译:碳饥饿诱导铜绿假单胞菌中PprB调控基因的表达。

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Pseudomonas aeruginosa can cause severe infections in humans. This bacterium often adopts a biofilm lifestyle that is hard to treat. In several previous studies, the PprA-PprB two-component system (TCS), which controls the expression of type IVb pili, BapA adhesin, and CupE fimbriae, was shown to be involved in biofilm formation (M. Romero, H. Silistre, L. Lovelock, V. J. Wright, K.-G. Chan, et al., Nucleic Acids Res 46:6823–6840, 2018, https://doi.org/10.1093ar/gky324; S. de Bentzmann, C. Giraud, C. S. Bernard, V. Calderon, F. Ewald F, et al., PLoS Pathog 8:e1003052, 2012, https://doi.org/10.1371/journal.ppat.1003052). However, signals or environmental conditions that can trigger the PprA-PprB TCS are still unknown, and the molecular mechanisms of PprB-mediated biofilm formation are poorly characterized. Here, we report that carbon starvation stress (CSS) can induce the expression of pprB and genes in the PprB regulon. CSS-induced pprB transcription is mediated by the stress response sigma factor RpoS rather than the two-component sensor PprA. We also observed a strong negative regulation of PprB on the transcription of itself. Further experiments showed that PprB overexpression greatly enhanced cell-cell adhesion (CCA) and cell-surface adhesion (CSA) in P. aeruginosa. Specifically, under the background of PprB overexpression, both the BapA adhesin and CupE fimbriae displayed positive effects on CCA and CSA, while the type IVb pili showed an unexpected negative effect on CCA and no effect on CSA. In addition, expression of the PprB regulon genes were significantly increased in 3-day colony biofilms, indicating a possible carbon limitation state. The CSS-RpoS-PprB-Bap/Flp/CupE pathway identified in this study provides a new perspective on the process of biofilm formation in carbon-limited environments.IMPORTANCE Typically, the determination of the external signals that can trigger a regulatory system is crucial to understand the regulatory logic and inward function of that system. The PprA-PprB two-component system was reported to be involved in biofilm formation in Pseudomonas aeruginosa, but the signals triggering this system are unknown. In this study, we found that carbon starvation stress (CSS) induces transcription of pprB and genes in the PprB regulon through an RpoS-dependent pathway. Increased PprB expression leads to enhanced cell-cell adhesion (CCA) and cell-surface adhesion (CSA) in P. aeruginosa. Both CCA and CSA are largely dependent on the Bap secretion system and are moderately dependent on the CupE fimbriae. Our findings suggest that PprB reinforces the structure of biofilms under carbon-limited conditions, and the Bap secretion system and CupE fimbriae are two potential targets for biofilm treatment.
机译:铜绿假单胞菌可引起人类严重感染。这种细菌通常采用难以治疗的生物膜生活方式。在先前的几项研究中,控制IVb型菌毛,BapA粘附素和CupE菌毛表达的PprA-PprB两组分系统(TCS)已证明参与生物膜形成(M. Romero,H。Silistre, L.Lovelock,VJ Wright,K.-G. Chan等,Nucleic Acids Res 46:6823-6840,2018,https://doi.org/10.1093ar/gky324; S.de Bentzmann,C. Giraud,CS Bernard,V.Calderon,F.Ewald F,et al。,PLoS Pathog 8:e1003052,2012,https://doi.org/10.1371/journal.ppat.1003052)。但是,仍可能未知可触发PprA-PprB TCS的信号或环境条件,并且对PprB介导的生物膜形成的分子机制的表征较差。在这里,我们报告碳饥饿压力(CSS)可以诱导pprB调节子中pprB和基因的表达。 CSS诱导的pprB转录由应激反应的西格玛因子RpoS而不是由两组分传感器PprA介导。我们还观察到PprB对自身转录的强烈负调控。进一步的实验表明,PprB的过表达大大增强了铜绿假单胞菌的细胞-细胞粘附(CCA)和细胞表面粘附(CSA)。具体而言,在PprB过表达的背景下,BapA粘附素和CupE菌毛均对CCA和CSA表现出积极的作用,而IVb菌毛对CCA表现出意想不到的负面影响,而对CSA没有影响。此外,PprB regulon基因的表达在3天的菌落生物膜中显着增加,表明可能存在碳限制状态。本研究中确定的CSS-RpoS-PprB-Bap / Flp / CupE途径为碳受限环境中生物膜形成的过程提供了新的视角。通常,确定可触发调控系统的外部信号至关重要了解该系统的监管逻辑和内向功能。据报道,PprA-PprB两组分系统与铜绿假单胞菌的生物膜形成有关,但触发该系统的信号尚不清楚。在这项研究中,我们发现碳饥饿压力(CSS)通过RpoS依赖性途径诱导pprB和PprB调节子中的基因转录。 PprB表达增加导致铜绿假单胞菌细胞-细胞粘附(CCA)和细胞表面粘附(CSA)增强。 CCA和CSA都很大程度上依赖于Bap分泌系统,而适度依赖于CupE菌毛。我们的发现表明,PprB在碳受限的条件下可增强生物膜的结构,而Bap分泌系统和CupE菌毛是生物膜治疗的两个潜在目标。

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