Department of Chemistry, University of California, Davis, California 95616, United States.
School of Natural Sciences, University of California, Merced, California 95343, United States.
J Am Chem Soc. 2022 Jan 12;144(1):184-194. doi: 10.1021/jacs.1c08103. Epub 2022 Jan 3.
As the only circadian oscillator that can be reconstituted with its constituent proteins KaiA, KaiB, and KaiC using ATP as an energy source, the cyanobacterial circadian oscillator serves as a model system for detailed mechanistic studies of day-night transitions of circadian clocks in general. The day-to-night transition occurs when KaiB forms a night-time complex with KaiC to sequester KaiA, the latter of which interacts with KaiC during the day to promote KaiC autophosphorylation. However, how KaiB forms the complex with KaiC remains poorly understood, despite the available structures of KaiB bound to hexameric KaiC. It has been postulated that KaiB-KaiC binding is regulated by inter-KaiB cooperativity. Here, using spin labeling continuous-wave electron paramagnetic resonance spectroscopy, we identified and quantified two subpopulations of KaiC-bound KaiB, corresponding to the "bulk" and "edge" KaiBC sites in stoichiometric and substoichiometric KaiBC complexes ( = 1-5). We provide kinetic evidence to support the intermediacy of the "edge" KaiBC sites as bridges and nucleation sites between free KaiB and the "bulk" KaiBC sites. Furthermore, we show that the relative abundance of "edge" and "bulk" sites is dependent on both KaiC phosphostate and KaiA, supporting the notion of phosphorylation-state controlled inter-KaiB cooperativity. Finally, we demonstrate that the interconversion between the two subpopulations of KaiC-bound KaiB is intimately linked to the KaiC phosphorylation cycle. These findings enrich our mechanistic understanding of the cyanobacterial clock and demonstrate the utility of EPR in elucidating circadian clock mechanisms.
作为唯一一种可以用其组成蛋白 KaiA、KaiB 和 KaiC 以及 ATP 作为能量来源重新构成的生物钟振荡器,蓝藻生物钟振荡器是研究生物钟昼夜节律转换的一般机制的模型系统。当 KaiB 与 KaiC 形成夜间复合物以隔离 KaiA 时,昼夜转换就会发生,而 KaiA 在白天与 KaiC 相互作用以促进 KaiC 自磷酸化。然而,尽管已经有 KaiB 与六聚体 KaiC 结合的结构,但 KaiB 如何与 KaiC 形成复合物仍知之甚少。有人假设 KaiB-KaiC 结合受 KaiB 间的合作调控。在这里,我们使用自旋标记连续波电子顺磁共振波谱法,鉴定并量化了 KaiC 结合的 KaiB 的两个亚群,分别对应于化学计量和亚化学计量 KaiBC 复合物中的“主体”和“边缘” KaiBC 位点(=1-5)。我们提供了动力学证据来支持“边缘” KaiBC 位点作为游离 KaiB 和“主体” KaiBC 位点之间的桥梁和成核位点的中间物。此外,我们表明“边缘”和“主体”位点的相对丰度取决于 KaiC 的磷酸化状态和 KaiA,这支持了磷酸化状态控制 KaiB 间合作的观点。最后,我们证明了 KaiC 结合的 KaiB 的两个亚群之间的转换与 KaiC 的磷酸化循环密切相关。这些发现丰富了我们对蓝藻钟的机制理解,并证明了 EPR 在阐明生物钟机制方面的效用。