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Quantitative Circadian Phosphoproteomic Analysis of Arabidopsis Reveals Extensive Clock Control of Key Components in Physiological, Metabolic, and Signaling Pathways

机译:拟南芥的定量昼夜节律蛋白质组学分析揭示了生理,代谢和信号通路中关键成分的广泛时钟控制

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The circadian clock provides adaptive advantages to an organism, resulting in increased fitness and survival. The phosphorylation events that regulate circadian-depen-dent signaling and the processes which post-translation-ally respond to clock-gated signals are largely unknown. To better elucidate post-translational events tied to the circadian system we carried out a survey of circadian-regulated protein phosphorylation events in Arabidopsis seedlings. A large-scale mass spectrometry-based quantitative phosphoproteomics approach employing TiO2-based phosphopeptide enrichment techniques identified and quantified 1586 phosphopeptides on 1080 protein groups. A total of 102 phosphopeptides displayed significant changes in abundance, enabling the identification of specific patterns of response to circadian rhythms. Our approach was sensitive enough to quantitate oscillations in the phosphorylation of low abundance clock proteins (EARLY FLOWERING4; ELF4 and PSEUDORESPONSE REGULATOR3; PRR3) as well as other transcription factors and kinases. During constant light, extensive cyclic changes in phosphorylation status occurred in critical regulators, implicating direct or indirect regulation by the circadian system. These included proteins influencing transcriptional regulation, translation, metabolism, stress and phytohormones-mediated responses. We validated our analysis using the elf4-211 allele, in which an S45L transition removes the phosphorylation herein identified. We show that removal of this phosphorylatable site diminishes interaction with EARLY FLOWERING3 (ELF3), a key partner in a tripartite evening complex required for circadian cycling. elf4-211 lengthens period, which increases with increasing temperature, relative to the wild type, resulting in a more stable temperature compensation of circadian period over a wider temperature range.
机译:昼夜节律时钟为生物提供了适应性优势,从而提高了适应性和生存率。调节昼夜节律信号的磷酸化事件和翻译后翻译对时钟门控信号的反应的过程在很大程度上是未知的。为了更好地阐明与昼夜节律系统有关的翻译后事件,我们对拟南芥幼苗中昼夜节律调节的蛋白质磷酸化事件进行了调查。一种大规模的基于质谱的定量磷酸化蛋白质组学方法,采用了基于TiO2的磷酸肽富集技术,在1080个蛋白质组上确定并量化了1586个磷酸肽。总共102种磷酸肽显示出丰度的显着变化,从而能够确定对昼夜节律的特定反应模式。我们的方法足够灵敏,可以量化低丰度时钟蛋白(EARLY FLOWERING4; ELF4和PSEUDORESPONSE REGULATOR3; PRR3)以及其他转录因子和激酶的磷酸化中的振荡。在持续光照下,关键调节剂中发生了磷酸化状态的广泛循环变化,暗示了昼夜节律系统的直接或间接调节。这些包括影响转录调节,翻译,代谢,应激和植物激素介导的反应的蛋白质。我们使用elf4-211等位基因验证了我们的分析,其中S45L过渡去除了此处鉴定的磷酸化。我们显示,去除此可磷酸化位点可减少与昼夜循环所需的三方晚上复合体中的关键伙伴EARLY FLOWERING3(ELF3)的相互作用。 elf4-211延长了周期,相对于野生型,周期随温度升高而增加,从而在更宽的温度范围内,昼夜周期的温度补偿更加稳定。

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