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The cyanobacterial circadian system: from biophysics to bioevolution.

机译:蓝细菌昼夜节律系统:从生物物理学到生物进化。

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Recent studies have unveiled the molecular machinery responsible for the biological clock in cyanobacteria and found that it exerts pervasive control over cellular processes including global gene expression. Indeed, the entire chromosome undergoes daily cycles of topology/compaction! The circadian system comprises both a posttranslational oscillator (PTO) and a transcriptional/translational feedback loop (TTFL). The PTO can be reconstituted in vitro with three purified proteins (KaiA, KaiB, and KaiC) and ATP. These are the only circadian proteins for which high-resolution structures are available. Phase in this nanoclockwork has been associated with key phosphorylations of KaiC. Structural considerations illuminate the mechanism by which the KaiABC oscillator ratchets unidirectionally. Models of the complete in vivo system have important implications for our understanding of circadian clocks in higher organisms, including mammals. The conjunction of structural, biophysical, and biochemical approaches to this system has brought our understanding of the molecular mechanisms of biological timekeeping to an unprecedented level.
机译:最近的研究揭示了负责蓝细菌生物钟的分子机制,并发现其对包括全局基因表达在内的细胞过程具有普遍的控制作用。实际上,整个染色体每天都会经历拓扑/紧缩的循环!昼夜节律系统包括翻译后振荡器(PTO)和转录/翻译反馈环(TTFL)。可以用三种纯化的蛋白质(KaiA,KaiB和KaiC)和ATP在体外重建PTO。这些是仅有的具有高分辨率结构的昼夜节律蛋白。纳米发条中的相位与KaiC的关键磷酸化有关。结构上的考虑阐明了KaiABC振荡器单向棘轮的机制。完整的体内系统模型对于我们对包括哺乳动物在内的高级生物体中生物钟的理解具有重要意义。结构,生物物理和生化方法与该系统的结合使我们对生物计时的分子机制的了解达到了前所未有的水平。

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