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Phosphorylation Is a Central Mechanism for Circadian Control of Metabolism and Physiology

机译:磷酸化是昼夜代谢和生理学控制的一种核心机制

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摘要

Circadian clocks are self-sustainable endogenous oscillators, present in virtually every cell, driving daily cycles of metabolism and physiology. The molecular mechanism of the circadian clock is based on interconnected transcriptional and translational feedback loops. While many studies have addressed circadian rhythms of the transcriptome and, to a lesser extent, the proteome, none have investigated the phosphoproteome. We apply mass spectrometry-based phosphoproteomics to obtain the first global in vivo quantification of circadian phosphorylation in mammals. Of more than 20,000 phosphosites, 25% significantly oscillate in the mouse liver, including novel sites on core clock proteins. The extent and amplitude of phosphorylation cycles far exceeds those observed in RNA and protein abundance. Our data indicate a dominant regulatory role for phosphorylation- dependent circadian tuning of signaling pathways. This allows the organism to integrate different signals and rapidly and economically respond to daily changes in nutrient availability and physiological states.
机译:昼夜节奏是自我可持续的内源性振荡器,几乎所有的细胞,驾驶日常新陈代谢和生理学的循环。昼夜节点的分子机制基于互联的转录和翻译反馈回路。虽然许多研究已经解决了转录组的昼夜节律,但在较小程度上,蛋白质组,无已经研究了磷酸磷蛋白酶。我们应用基于质谱的磷蛋白蛋白酶,以获得哺乳动物中昼夜节律磷酸化的第一个全球化。超过20,000种磷酸水,在小鼠肝脏中显着振荡25%,包括核心钟表蛋白的新网站。磷酸化循环的程度和幅度远远超过RNA和蛋白质丰度观察的范围。我们的数据表明了磷酸化途径依赖性昼夜调整的主导调节作用。这允许生物体集成不同的信号并迅速,经济地响应营养可用性和生理状态的日常变化。

著录项

  • 来源
    《Cell metabolism》 |2017年第1期|共10页
  • 作者单位

    Max Planck Inst Biochem Dept Prote &

    Signal Transduct D-82152 Martinsried Germany;

    Max Planck Inst Biochem Dept Prote &

    Signal Transduct D-82152 Martinsried Germany;

    Max Planck Inst Biochem Dept Prote &

    Signal Transduct D-82152 Martinsried Germany;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 内分泌腺疾病及代谢病;
  • 关键词

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