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与甲基接受趋化蛋白化学感受器具有结构和功能相似性的红假单胞菌光感受器组件。

Component of the Rhodospirillum centenum photosensory apparatus with structural and functional similarity to methyl-accepting chemotaxis protein chemoreceptors.

作者信息

Jiang Z Y, Bauer C E

机构信息

Department of Biology, Indiana University, Bloomington, Indiana 47405, USA.

出版信息

J Bacteriol. 2001 Jan;183(1):171-7. doi: 10.1128/JB.183.1.171-177.2001.

Abstract

Photosynthetic bacteria respond to alterations in light conditions by migrating to locations that allows optimal use of light as an energy source. Studies have indicated that photosynthesis-driven electron transport functions as an attractant signal for motility among purple photosynthetic bacteria. However, it is unclear just how the motility-based signal transduction system monitors electron flow through photosynthesis-driven electron transport. Recently, we have demonstrated that the purple photosynthetic bacterium Rhodospirillum centenum is capable of rapidly moving swarm cell colonies toward infrared light as well as away from visible light. Light-driven colony motility of R. centenum has allowed us to perform genetic dissection of the signaling pathway that affects photosynthesis-driven motility. In this study, we have undertaken sequence and mutational analyses of one of the components of a signal transduction pathway, Ptr, which appears responsible for transmitting a signal from the photosynthesis-driven electron transport chain to the chemotaxis signal transduction cascade. Mutational analysis demonstrates that cells disrupted for ptr are defective in altering motility in response to light, as well as defective in light-dependent release of methanol. We present a model which proposes that Ptr senses the redox state of a component in the photosynthetic cyclic electron transport chain and that Ptr is responsible for transmitting a signal to the chemotaxis machinery to induce a photosynthesis-dependent motility response.

摘要

光合细菌通过迁移到能够最佳利用光作为能源的位置来响应光照条件的变化。研究表明,光合作用驱动的电子传递在紫色光合细菌的运动中充当吸引信号。然而,基于运动的信号转导系统究竟如何监测通过光合作用驱动的电子传递的电子流尚不清楚。最近,我们已经证明紫色光合细菌百脉根红螺菌能够使群体细胞菌落快速向红外光移动,同时远离可见光。百脉根红螺菌的光驱动菌落运动使我们能够对影响光合作用驱动运动的信号通路进行遗传剖析。在这项研究中,我们对信号转导通路的一个组成部分Ptr进行了序列和突变分析,Ptr似乎负责将信号从光合作用驱动的电子传递链传递到趋化信号转导级联。突变分析表明,ptr基因被破坏的细胞在响应光时改变运动性方面存在缺陷,并且在光依赖的甲醇释放方面也存在缺陷。我们提出了一个模型,该模型认为Ptr感知光合循环电子传递链中一个组分的氧化还原状态,并且Ptr负责将信号传递给趋化机制以诱导光合作用依赖的运动反应。

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