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将第二信使 c-di-GMP 整合到趋化信号通路中。

Integration of the second messenger c-di-GMP into the chemotactic signaling pathway.

机构信息

Department of Biochemistry, Cellular and Molecular Biology, University of Tennessee, Knoxville, Tennessee, USA.

出版信息

mBio. 2013 Mar 19;4(2):e00001-13. doi: 10.1128/mBio.00001-13.

Abstract

UNLABELLED

Elevated intracellular levels of the bacterial second messenger c-di-GMP are known to suppress motility and promote sessility. Bacterial chemotaxis guides motile cells in gradients of attractants and repellents over broad concentration ranges, thus allowing bacteria to quickly adapt to changes in their surroundings. Here, we describe a chemotaxis receptor that enhances, as opposed to suppresses, motility in response to temporary increases in intracellular c-di-GMP. Azospirillum brasilense's preferred metabolism is adapted to microaerophily, and these motile cells quickly navigate to zones of low oxygen concentration by aerotaxis. We observed that changes in oxygen concentration result in rapid changes in intracellular c-di-GMP levels. The aerotaxis and chemotaxis receptor, Tlp1, binds c-di-GMP via its C-terminal PilZ domain and promotes persistent motility by increasing swimming velocity and decreasing swimming reversal frequency, which helps A. brasilense reach low-oxygen zones. If c-di-GMP levels remain high for extended periods, A. brasilense forms nonmotile clumps or biofilms on abiotic surfaces. These results suggest that association of increased c-di-GMP levels with sessility is correct on a long-term scale, while in the short-term c-di-GMP may actually promote, as opposed to suppress, motility. Our data suggest that sensing c-di-GMP by Tlp1 functions similar to methylation-based adaptation. Numerous chemotaxis receptors contain C-terminal PilZ domains or other sensory domains, suggesting that intracellular c-di-GMP as well as additional stimuli can be used to modulate adaptation of bacterial chemotaxis receptors.

IMPORTANCE

To adapt and compete under changing conditions, bacteria must not only detect and respond to various environmental cues but also be able to remain sensitive to further changes in the environmental conditions. In bacterial chemotaxis, chemosensory sensitivity is typically brought about by changes in the methylation status of chemotaxis receptors capable of modulating the ability of motile cells to navigate in gradients of various physicochemical cues. Here, we show that the ubiquitous second messenger c-di-GMP functions to modulate chemosensory sensitivity of a bacterial chemotaxis receptor in the alphaproteobacterium Azospirillum brasilense. Binding of c-di-GMP to the chemotaxis receptor promotes motility under conditions of elevated intracellular c-di-GMP levels. Our results revealed that the role of c-di-GMP as a sessile signal is overly simplistic. We also show that adaptation by sensing an intracellular metabolic cue, via PilZ or other domains, is likely widespread among bacterial chemotaxis receptors.

摘要

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已知细菌第二信使 c-di-GMP 的细胞内水平升高会抑制运动并促进定殖。细菌趋化作用引导运动细胞在吸引剂和抑制剂的浓度梯度中运动,从而使细菌能够快速适应周围环境的变化。在这里,我们描述了一种趋化作用受体,它可以增强而不是抑制运动,以响应细胞内 c-di-GMP 的暂时增加。巴西固氮螺菌的首选代谢方式适应微需氧性,这些运动细胞通过趋氧作用快速导航到低氧浓度区域。我们观察到氧浓度的变化导致细胞内 c-di-GMP 水平的快速变化。趋氧和趋化作用受体 Tlp1 通过其 C 端 PilZ 结构域与 c-di-GMP 结合,并通过增加游泳速度和降低游泳反转频率来促进持续运动,这有助于巴西固氮螺菌到达低氧区。如果 c-di-GMP 水平持续升高,巴西固氮螺菌会在非生物表面形成非运动的团块或生物膜。这些结果表明,在长期尺度上,与定殖相关的 c-di-GMP 水平的增加是正确的,而在短期,c-di-GMP 实际上可能促进而不是抑制运动。我们的数据表明,Tlp1 通过感应 c-di-GMP 来感知环境,其功能类似于基于甲基化的适应。许多趋化作用受体包含 C 端 PilZ 结构域或其他感觉结构域,这表明细胞内 c-di-GMP 以及其他刺激物可以用于调节细菌趋化作用受体的适应。

重要性

为了在不断变化的条件下适应和竞争,细菌不仅必须检测和响应各种环境线索,还必须能够对环境条件的进一步变化保持敏感。在细菌趋化作用中,化学敏感性通常是由能够调节运动细胞在各种物理化学线索梯度中导航能力的趋化作用受体的甲基化状态的变化引起的。在这里,我们表明,普遍存在的第二信使 c-di-GMP 可以调节 alpha 变形菌巴西固氮螺菌中一种细菌趋化作用受体的化学敏感性。c-di-GMP 与趋化作用受体的结合促进了细胞内 c-di-GMP 水平升高条件下的运动。我们的结果表明,c-di-GMP 作为定殖信号的作用过于简单化。我们还表明,通过 PilZ 或其他结构域感应细胞内代谢信号来进行适应可能在细菌趋化作用受体中广泛存在。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b718/3604760/482d7f904c14/mbo0021314630001.jpg

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