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Circadian rhythms of superhelical status of DNA in cyanobacteria

机译:蓝细菌中DNA超螺旋状态的昼夜节律

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The cyanobacterium Synechococcus elongatus expresses robust circadian (daily) rhythms under the control of the KaiABC-based core clockwork. Unlike eukaryotic circadian systems characterized thus far, the cyanobacterial clockwork modulates gene expression patterns globally and specific clock gene promoters are not necessary in mediating the circadian feedback loop. The oscilloid model postulates that global rhythms of transcription are based on rhythmic changes in the status of the cyanobacterial chromosome that are ultimately controlled by the KaiABC oscillator. By using a nonessential, cryptic plasmid (pANS) as a reporter of the superhelical state of DNA in cyanobacteria, we show that the supercoiling status of this plasmid changes in a circadian manner in vivo. The rhythm of topological change in the plasmid is conditional; this change is rhythmic in constant light and in light/dark cycles, but not in constant darkness. In further support of the oscilloid model, cyanobacterial promoters that are removed from their native chromosomal locations and placed on a plasmid preserve their circadian expression patterns.
机译:在基于KaiABC的核心发条的控制下,长蓝藻Synechococcus elongatus表达了稳定的昼夜节律。与迄今表征的真核生物昼夜节律系统不同,蓝细菌钟表系统全局调节基因表达模式,在介导生物钟反馈回路中不需要特定的时钟基因启动子。 oscilloid模型假设全局转录节奏是基于最终由KaiABC振荡器控制的蓝细菌染色体状态的节奏变化。通过使用非必需的,隐秘的质粒(pANS)作为蓝细菌中DNA超螺旋状态的报告基因,我们证明了该质粒的超螺旋状态在体内以昼夜节律的方式发生了变化。质粒拓扑变化的节奏是有条件的;这种变化在持续的光照和明/暗循环中是有节奏的,但在持续的黑暗中却没有。为了进一步支持骨样模型,从其天然染色体位置移出并放置在质粒上的蓝细菌启动子保留了其昼夜节律表达模式。

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