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Multiple CheY Homologs Control Swimming Reversals and Transient Pauses in Azospirillum brasilense

机译:多个CheY同源物控制巴西固氮螺菌的游泳逆转和短暂暂停

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摘要

Chemotaxis, together with motility, helps bacteria foraging in their habitat. Motile bacteria exhibit a variety of motility patterns, often controlled by chemotaxis, to promote dispersal. Motility in many bacteria is powered by a bidirectional flagellar motor. The flagellar motor has been known to briefly pause during rotation because of incomplete reversals or stator detachment. Transient pauses were previously observed in bacterial strains lacking CheY, and these events could not be explained by incomplete motor reversals or stator detachment. Here, we systematically analyzed swimming trajectories of various chemotaxis mutants of the monotrichous soil bacterium, . Like other polar flagellated bacterium, the main swimming pattern in is run and reverse. also uses run-pauses and putative run-reverse-flick-like swimming patterns, although these are rare events. mutant derivatives lacking the chemotaxis master histidine kinase, CheA4, or the central response regulator, CheY7, also showed transient pauses. Strikingly, the frequency of transient pauses increased dramatically in the absence of CheY4. Our findings collectively suggest that reversals and pauses are controlled through signaling by distinct CheY homologs, and thus are likely to be functionally important in the lifestyle of this soil organism.
机译:趋化性与运动性一起帮助细菌在其栖息地觅食。运动细菌表现出各种运动模式,通常由趋化性控制,以促进扩散。许多细菌的运动由双向鞭毛马达驱动。众所周知,由于不完全反转或定子脱离,鞭毛电动机会在旋转过程中短暂暂停。先前在缺乏CheY的细菌菌株中观察到短暂的停顿,这些事件不能用不完全的运动反转或定子脱离来解释。在这里,我们系统地分析了单粒土壤细菌各种趋化性突变体的游泳轨迹。像其他极鞭毛细菌一样,主要游动模式是反向运行。尽管这是罕见的事件,但它也使用奔跑暂停和推定的奔跑-反向轻弹状游泳方式。缺乏趋化性主组氨酸激酶CheA4或中央反应调节剂CheY7的突变体衍生物也显示出短暂的停顿。令人惊讶的是,在没有CheY4的情况下,瞬时停顿的频率急剧增加。我们的发现共同表明,逆转和停顿是通过不同的CheY同源物通过信号传导来控制的,因此可能在这种土壤生物的生活方式中具有重要的功能。

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