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Phosphorylation of Ribosomal Protein RPS6 Integrates Light Signals and Circadian Clock Signals

机译:核糖体蛋白RPS6的磷酸化整合了光信号和生物钟信号

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摘要

The translation of mRNA into protein is tightly regulated by the light environment as well as by the circadian clock. Although changes in translational efficiency have been well documented at the level of mRNA-ribosome loading, the underlying mechanisms are unclear. The reversible phosphorylation of RIBOSOMAL PROTEIN OF THE SMALL SUBUNIT 6 (RPS6) has been known for 40 years, but the biochemical significance of this event remains unclear to this day. Here, we confirm using a clock-deficient strain of Arabidopsis thaliana that RPS6 phosphorylation (RPS6-P) is controlled by the diel light-dark cycle with a peak during the day. Strikingly, when wild-type, clock-enabled, seedlings that have been entrained to a light-dark cycle are placed under free-running conditions, the circadian clock drives a cycle of RPS6-P with an opposite phase, peaking during the subjective night. We show that in wild-type seedlings under a light-dark cycle, the incoherent light and clock signals are integrated by the plant to cause an oscillation in RPS6-P with a reduced amplitude with a peak during the day. Sucrose can stimulate RPS6-P, as seen when sucrose in the medium masks the light response of etiolated seedlings. However, the diel cycles of RPS6-P are observed in the presence of 1% sucrose and in its absence. Sucrose at a high concentration of 3% appears to interfere with the robust integration of light and clock signals at the level of RPS6-P. Finally, we addressed whether RPS6-P occurs uniformly in polysomes, non-polysomal ribosomes and their subunits, and non-ribosomal protein. It is the polysomal RPS6 whose phosphorylation is most highly stimulated by light and repressed by darkness. These data exemplify a striking case of contrasting biochemical regulation between clock signals and light signals. Although the physiological significance of RPS6-P remains unknown, our data provide a mechanistic basis for the future understanding of this enigmatic event.
机译:mRNA到蛋白质的翻译受光照环境以及昼夜节律时钟的严格调节。尽管在mRNA核糖体加载水平上已充分证明了翻译效率的变化,但其潜在机制尚不清楚。小亚单位6(RPS6)的核糖体蛋白的可逆磷酸化已经有40年了,但是这一事件的生化意义至今仍不清楚。在这里,我们确认使用拟南芥的时钟不足菌株,RPS6磷酸化(RPS6-P)受diel明暗循环控制,白天呈峰值。令人惊讶的是,将已经带入明暗循环的带时钟功能的野生型幼苗置于自由运行条件下时,生物钟会驱动一个反相的RPS6-P循环,在主观夜晚达到顶峰。我们表明,在光暗循环下的野生型幼苗中,植物对不相干的光和时钟信号进行了整合,从而导致RPS6-P振荡,振幅降低,并在一天中达到峰值。蔗糖可以刺激RPS6-P,如培养基中的蔗糖掩盖了黄化幼苗的光响应。但是,在有1%蔗糖和没有蔗糖的情况下,观察到RPS6-P的diel循环。 3%的高浓度蔗糖似乎会干扰RPS6-P水平的光和时钟信号的稳固整合。最后,我们探讨了RPS6-P是否在多核糖体,非多核糖体核糖体及其亚基和非核糖体蛋白中均匀发生。是多体RPS6,其磷酸化在光的刺激下最高,在黑暗的抑制下。这些数据说明了时钟信号和光信号之间生化调节对比的惊人情况。尽管RPS6-P的生理意义仍然未知,但我们的数据为将来对该神秘事件的理解提供了机械基础。

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