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ASK family kinases mediate cellular stress and redox signaling to circadian clock

机译:ASK家族激酶介导细胞应激和氧化还原信号传导至生物钟

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摘要

Daily rhythms of behaviors and physiologies are generated by the circadian clock, which is composed of clock genes and the encoded proteins forming transcriptional/translational feedback loops (TTFLs). The circadian clock is a self-sustained oscillator and flexibly responds to various time cues to synchronize with environmental 24-h cycles. However, the key molecule that transmits cellular stress to the circadian clockwork is unknown. Here we identified apoptosis signal-regulating kinase (ASK), a member of the MAPKKK family, as an essential mediator determining the circadian period and phase of cultured cells in response to osmotic changes of the medium. The physiological impact of ASK signaling was demonstrated by a response of the clock to changes in intracellular redox states. Intriguingly, the TTFLs drive rhythmic expression of Ask genes, indicating ASK-mediated association of the TTFLs with intracellular redox. In behavioral analysis, Ask1, Ask2, and Ask3 triple-KO mice exhibited compromised light responses of the circadian period and phase in their activity rhythms. LC-MS/MS–based proteomic analysis identified a series of ASK-dependent and osmotic stress-responsive phosphorylations of proteins, among which CLOCK, a key component of the molecular clockwork, was phosphorylated at Thr843 or Ser845 in the carboxyl-terminal region. These findings reveal the ASK-dependent stress response as an underlying mechanism of circadian clock flexibility.
机译:昼夜节律由生物钟产生,其行为和生理的日常节律由生物钟基因和形成转录/翻译反馈环(TTFL)的编码蛋白组成。该生物钟是一个自持振荡器,可灵活响应各种时间提示,以与环境24小时周期同步。然而,将细胞压力传递给生物钟的关键分子尚不清楚。在这里,我们确定了凋亡信号调节激酶(ASK)(MAPKKK家族的一员),是决定培养基对细胞渗透压变化的昼夜周期和阶段的重要介质。时钟对细胞内氧化还原状态变化的响应证明了ASK信号传导的生理影响。有趣的是,TTFL驱动Ask基因的节律性表达,表明ASK介导的TTFL与细胞内氧化还原的联系。在行为分析中,Ask1,Ask2和Ask3三重KO小鼠在其活动节律中出现了昼夜节律周期和阶段的光反应减弱。基于LC-MS / MS的蛋白质组学分析确定了一系列依赖ASK的和渗透胁迫的蛋白质响应磷酸化,其中CLOCK是分子发条的关键组成部分,在羧基末端区域的Thr843或Ser845处被磷酸化。这些发现揭示了依赖ASK的应激反应是昼夜节律灵活性的潜在机制。

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