Quorum sensing regulation by the nitrogen phosphotransferase system in Pseudomonas aeruginosa.

IF 3 3区 生物学 Q3 MICROBIOLOGY
Journal of Bacteriology Pub Date : 2025-08-21 Epub Date: 2025-08-01 DOI:10.1128/jb.00048-25
Samalee Banerjee, Nicole E Smalley, Pradtahna Saenjamsai, Anthony R Fehr, Ajai A Dandekar, Matthew T Cabeen, Josephine R Chandler
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引用次数: 0

Abstract

In the opportunistic pathogen Pseudomonas aeruginosa, the nitrogen-related phosphotransferase system (PTSNtr) influences multiple virulence behaviors. The PTSNtr is comprised of three enzymes: first PtsP, then the PtsO phosphocarrier, and the final PtsN phosphoacceptor. We previously showed that ptsP inactivation enhances LasI-LasR quorum sensing, a system by which P. aeruginosa regulates genes in response to population density. LasI synthesizes a diffusible autoinducer that binds and activates the LasR receptor, which activates a feedback loop by increasing lasI expression. In this study, we examined the impact of the PTSNtr on quorum sensing. Disruption of ptsP increased the expression of some, but not all, tested quorum-controlled genes, including lasI, phzM (pyocyanin biosynthesis), hcnA (hydrogen cyanide biosynthesis), and, to a lesser extent, rsaL (quorum sensing regulator). Expression of these genes remained dependent on LasR and the autoinducer, whether provided endogenously or exogenously. Increased lasI expression in ∆ptsP (or ∆ptsO) cells was partly due to the presence of unphosphorylated PtsN, which alone was sufficient to elevate lasI expression. However, we observed residual increases in ∆ptsP or ∆ptsO cells even in the absence of PtsN, suggesting that PtsP and PtsO can regulate gene expression independently of PtsN. Indeed, genetically disrupting the PtsO phosphorylation site impacted gene expression in the absence of PtsN, and transcriptomic evidence suggested that PtsO and PtsN have distinct regulons. Our results expand our view of how the PTSNtr components function both within and apart from the classic phosphorylation cascade to regulate key virulence behaviors in P. aeruginosa.

Importance: Pseudomonas aeruginosa often causes severe and difficult-to-treat infections. P. aeruginosa virulence requires the nitrogen-related phosphotransferase system (PTSNtr), which comprises the phosphocarrier proteins PtsP and PtsO and the final phosphoacceptor, PtsN. The PTSNtr is known to modulate quorum sensing, but little is known about the mechanism of regulation. Here, we examined quorum sensing regulation by the PTSNtr. We showed that the PTSNtr increases quorum sensing-mediated activation of certain genes through the additive effects of both PtsO and PtsN. We also used transcriptomics to determine the regulons of PtsO and PtsN and found that they are largely nonoverlapping. The results position PtsO and PtsN as independent effectors in the PTSNtr and shed new light on virulence regulation in this important pathogen.

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铜绿假单胞菌氮磷酸转移酶系统的群体感应调节。
在条件致病菌铜绿假单胞菌中,氮相关磷酸转移酶系统(PTSNtr)影响多种毒力行为。PTSNtr由三种酶组成:首先是PtsP,然后是PtsO磷载体,最后是PtsN磷受体。我们之前的研究表明,ptsP失活增强了LasI-LasR群体感应,这是铜绿假单胞菌根据种群密度调节基因的一种系统。LasI合成了一种可扩散的自诱导剂,结合并激活LasR受体,通过增加LasI表达激活反馈回路。在这项研究中,我们研究了PTSNtr对群体感应的影响。ptsP的破坏增加了一些(但不是全部)群体控制基因的表达,包括lasI, phzM (pyocyanin生物合成),hcnA(氰化氢生物合成),以及较小程度上的rsaL(群体感应调节因子)。这些基因的表达仍然依赖于激光辐射和自诱导剂,无论是内源性的还是外源性的。在∆ptsP(或∆ptsO)细胞中lasI表达的增加部分是由于未磷酸化的PtsN的存在,其本身足以提高lasI的表达。然而,我们观察到,即使在没有PtsN的情况下,∆ptsP或∆ptsO细胞的残余量也有所增加,这表明ptsP和ptsO可以独立于PtsN调节基因表达。事实上,基因破坏PtsO磷酸化位点会影响PtsN缺失时的基因表达,转录组学证据表明PtsO和PtsN具有不同的调控。我们的研究结果扩展了我们的观点,即PTSNtr成分如何在经典的磷酸化级联内部和之外发挥作用,以调节铜绿假单胞菌的关键毒力行为。重要性:铜绿假单胞菌经常引起严重和难以治疗的感染。铜绿假单胞菌的毒力需要氮相关磷酸转移酶系统(PTSNtr),该系统由磷载体蛋白ptp和PtsO以及最终的磷受体PtsN组成。已知PTSNtr调节群体感应,但对其调节机制知之甚少。在这里,我们研究了PTSNtr的群体感应调节。我们发现PTSNtr通过PtsO和PtsN的加性作用增加了群体感应介导的某些基因的激活。我们还使用转录组学来确定PtsO和PtsN的调控,发现它们在很大程度上是不重叠的。结果表明PtsO和PtsN在PTSNtr中是独立的效应物,并为这一重要病原体的毒力调控提供了新的思路。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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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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