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生物钟蛋白 KaiA 的结构中编码了其功能可逆开关的信息。

The reversible function switching of the circadian clock protein KaiA is encoded in its structure.

机构信息

Hubei Key Laboratory of Tumor Microenvironment and Immunotherapy, China Three Gorges University, Yichang 443002, China; College of Medical Science, China Three Gorges University, Yichang 443002, China.

Hubei Key Laboratory of Tumor Microenvironment and Immunotherapy, China Three Gorges University, Yichang 443002, China; College of Medical Science, China Three Gorges University, Yichang 443002, China.

出版信息

Biochim Biophys Acta Gen Subj. 2017 Nov;1861(11 Pt A):2535-2542. doi: 10.1016/j.bbagen.2017.08.012. Epub 2017 Aug 24.

Abstract

BACKGROUND

Circadian rhythms are important to the evolution of organisms and human health, and recent studies proved that post-translational circadian clocks widely exist in all phyla. The circadian clock of cyanobacteria is an important model system as the first verified circadian oscillator independent of transcriptional-/translational-level regulations. This circadian oscillator consists of three proteins, KaiA, KaiB, and KaiC, in which KaiA stimulates KaiC's phosphorylation but KaiB antagonizes KaiA. Despite of intense research on the molecular mechanism of this oscillator in the last decades, the regulation mechanism of KaiA's function remains unclear.

METHODS

In this study, we combined computational tools and experimental assays to study the function switching of KaiA. We adopted different strategies to re-design KaiA protein to elucidate its function switch during the circadian oscillation.

RESULTS

We showed that KaiA's function switch is determined by its structural dynamics, and KaiB antagonizes KaiA by switching it from an active state to an inactive state with the help of KaiC.

CONCLUSIONS

The reversible function switching of KaiA is key to the KaiABC oscillator, and the switching could be regulated by the 3-D domain swapped homo-dimer conformation of KaiA, which provides the necessary structural flexibility.

GENERAL SIGNIFICANCE

Our finding updated the current knowledge on the regulation of KaiA's function. This work would deepen our understanding of the KaiABC oscillator, and should be conceptually useful in the design of artificial biological oscillators.

摘要

背景

昼夜节律对生物进化和人类健康至关重要,最近的研究证实,翻译后昼夜钟广泛存在于所有生物门类中。蓝藻的昼夜钟是一个重要的模型系统,因为它是第一个被验证的独立于转录/翻译水平调控的昼夜振荡器。这个昼夜振荡器由三种蛋白质 KaiA、KaiB 和 KaiC 组成,其中 KaiA 刺激 KaiC 的磷酸化,而 KaiB 拮抗 KaiA。尽管在过去几十年中对这个振荡器的分子机制进行了深入研究,但 KaiA 功能的调节机制仍不清楚。

方法

在这项研究中,我们结合计算工具和实验检测来研究 KaiA 的功能转换。我们采用了不同的策略来重新设计 KaiA 蛋白,以阐明其在昼夜振荡过程中的功能转换。

结果

我们表明,KaiA 的功能转换是由其结构动力学决定的,KaiB 在 KaiC 的帮助下将 KaiA 从活性状态切换到非活性状态,从而拮抗 KaiA。

结论

KaiA 的可逆功能转换是 KaiABC 振荡器的关键,这种转换可以通过 KaiA 的 3-D 结构域交换同型二聚体构象来调节,这提供了必要的结构灵活性。

一般意义

我们的发现更新了当前关于 KaiA 功能调节的知识。这项工作将加深我们对 KaiABC 振荡器的理解,并且在设计人工生物振荡器时应该具有概念上的意义。

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