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鞭毛定子刺激铜绿假单胞菌产生 c-di-GMP。

Flagellar Stators Stimulate c-di-GMP Production by Pseudomonas aeruginosa.

机构信息

Department of Microbiology and Immunology, Geisel School of Medicine at Dartmouth, Hanover, New Hampshire, USA.

Department of Biochemistry, University of Oxford, Oxford, United Kingdom.

出版信息

J Bacteriol. 2019 Aug 22;201(18). doi: 10.1128/JB.00741-18. Print 2019 Sep 15.

Abstract

Flagellar motility is critical for surface attachment and biofilm formation in many bacteria. A key regulator of flagellar motility in and other microbes is cyclic diguanylate (c-di-GMP). High levels of this second messenger repress motility and stimulate biofilm formation. c-di-GMP levels regulate motility in in part by influencing the localization of its two flagellar stator sets, MotAB and MotCD. Here, we show that while c-di-GMP can influence stator localization, stators can in turn impact c-di-GMP levels. We demonstrate that the swarming motility-driving stator MotC physically interacts with the transmembrane region of the diguanylate cyclase SadC. Furthermore, we demonstrate that this interaction is capable of stimulating SadC activity. We propose a model by which the MotCD stator set interacts with SadC to stimulate c-di-GMP production under conditions not permissive to motility. This regulation implies a positive-feedback loop in which c-di-GMP signaling events cause MotCD stators to disengage from the motor; then disengaged stators stimulate c-di-GMP production to reinforce a biofilm mode of growth. Our studies help to define the bidirectional interactions between c-di-GMP and the flagellar machinery. The ability of bacterial cells to control motility during early steps in biofilm formation is critical for the transition to a nonmotile, biofilm lifestyle. Recent studies have clearly demonstrated the ability of c-di-GMP to control motility via a number of mechanisms, including through controlling transcription of motility-related genes and modulating motor function. Here, we provide evidence that motor components can in turn impact c-di-GMP levels. We propose that communication between motor components and the c-di-GMP synthesis machinery allows the cell to have a robust and sensitive switching mechanism to control motility during early events in biofilm formation.

摘要

鞭毛运动对于许多细菌的表面附着和生物膜形成至关重要。环二鸟苷酸(c-di-GMP)是 和其他微生物中鞭毛运动的关键调节剂。这种第二信使的高水平抑制运动并刺激生物膜形成。c-di-GMP 水平通过影响其两个鞭毛定子组 MotAB 和 MotCD 的定位来调节 中的运动。在这里,我们表明,虽然 c-di-GMP 可以影响定子定位,但定子反过来也可以影响 c-di-GMP 水平。我们证明,群集运动驱动定子 MotC 与二鸟苷酸环化酶 SadC 的跨膜区域物理相互作用。此外,我们证明这种相互作用能够刺激 SadC 活性。我们提出了一个模型,即 MotCD 定子组与 SadC 相互作用,在不允许运动的条件下刺激 c-di-GMP 的产生。这种调节意味着正反馈回路,其中 c-di-GMP 信号事件导致 MotCD 定子与电机脱离;然后脱离的定子刺激 c-di-GMP 的产生,以加强生物膜生长模式。我们的研究有助于定义 c-di-GMP 和鞭毛机械之间的双向相互作用。细菌细胞在生物膜形成的早期阶段控制运动的能力对于向非运动、生物膜生活方式的转变至关重要。最近的研究清楚地表明,c-di-GMP 通过多种机制控制运动,包括通过控制与运动相关的基因的转录和调节运动功能。在这里,我们提供了运动组件可以反过来影响 c-di-GMP 水平的证据。我们提出,运动组件和 c-di-GMP 合成机制之间的通信允许细胞具有强大而敏感的切换机制,以控制生物膜形成早期事件中的运动。

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