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利用萤火虫荧光素酶实时监测生物发光揭示蓝藻生物钟蛋白 KaiC 的节律性三磷酸腺苷释放。

Rhythmic adenosine triphosphate release from the cyanobacterial circadian clock protein KaiC revealed by real-time monitoring of bioluminescence using firefly luciferase.

机构信息

Center for Gene Research, Nagoya University, Nagoya, Japan.

Division of Biological Science, Graduate School of Science, Nagoya University, Nagoya, Japan.

出版信息

Genes Cells. 2021 Feb;26(2):83-93. doi: 10.1111/gtc.12825. Epub 2021 Jan 17.

Abstract

The cyanobacterial circadian clock is composed of three clock proteins, KaiA, KaiB and KaiC. This KaiABC clock system can be reconstituted in vitro in the presence of adenosine triphosphate (ATP) and Mg , and shows circadian rhythms in the phosphorylation level and ATPase activity of KaiC. Previously, we found that ATP regulates a complex formation between KaiB and KaiC, and KaiC releases ATP from KaiC itself (PLoS One, 8, 2013, e80200). In this study, we examined whether the ATP release from KaiC shows any rhythms in vitro. We monitored the release of ATP from wild-type and ATPase motif mutants of KaiC as a bioluminescence in real time using a firefly luciferase assay in vitro and obtained the following results: (a) ATP release from KaiC oscillated even without KaiA and KaiB although period of the oscillation was not 24 hr; (b) ATP was mainly released from the N-terminal domain of KaiC; and (c) the ATP release was enhanced and suppressed by KaiB and KaiA, respectively. These results suggest that KaiC can generate basal oscillation as a core clock without KaiA and KaiB, whereas these two proteins contribute to adjusting and stabilizing the oscillation.

摘要

蓝藻生物钟由三种时钟蛋白 KaiA、KaiB 和 KaiC 组成。该 KaiABC 时钟系统在三磷酸腺苷(ATP)和镁存在的情况下可在体外重建,并显示 KaiC 的磷酸化水平和 ATP 酶活性的昼夜节律。此前,我们发现 ATP 调节 KaiB 和 KaiC 之间的复合物形成,并且 KaiC 从 KaiC 自身释放 ATP(PLoS One,8,2013,e80200)。在这项研究中,我们检查了 KaiC 从体外是否显示任何节律的 ATP 释放。我们使用体外萤火虫荧光素酶测定法实时监测野生型和 ATP 酶基序突变体的 KaiC 从 ATP 释放的情况,并获得了以下结果:(a)即使没有 KaiA 和 KaiB,KaiC 也会发生 ATP 释放振荡,尽管振荡的周期不是 24 小时;(b)ATP 主要从 KaiC 的 N 端结构域释放;(c)KaiB 和 KaiA 分别增强和抑制 ATP 释放。这些结果表明,KaiC 可以在没有 KaiA 和 KaiB 的情况下作为核心时钟产生基础振荡,而这两种蛋白质有助于调整和稳定振荡。

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