Department of Ecogenomics and Systems Biology, University of Vienna, Vienna, Austria.
Vienna Metabolomics Center (VIME), University of Vienna, Vienna, Austria.
Sci Rep. 2016 Aug 22;6:31697. doi: 10.1038/srep31697.
Since years, research on SnRK1, the major cellular energy sensor in plants, has tried to define its role in energy signalling. However, these attempts were notoriously hampered by the lethality of a complete knockout of SnRK1. Therefore, we generated an inducible amiRNA::SnRK1α2 in a snrk1α1 knock out background (snrk1α1/α2) to abolish SnRK1 activity to understand major systemic functions of SnRK1 signalling under energy deprivation triggered by extended night treatment. We analysed the in vivo phosphoproteome, proteome and metabolome and found that activation of SnRK1 is essential for repression of high energy demanding cell processes such as protein synthesis. The most abundant effect was the constitutively high phosphorylation of ribosomal protein S6 (RPS6) in the snrk1α1/α2 mutant. RPS6 is a major target of TOR signalling and its phosphorylation correlates with translation. Further evidence for an antagonistic SnRK1 and TOR crosstalk comparable to the animal system was demonstrated by the in vivo interaction of SnRK1α1 and RAPTOR1B in the cytosol and by phosphorylation of RAPTOR1B by SnRK1α1 in kinase assays. Moreover, changed levels of phosphorylation states of several chloroplastic proteins in the snrk1α1/α2 mutant indicated an unexpected link to regulation of photosynthesis, the main energy source in plants.
多年来,对植物中主要的细胞能量传感器 SnRK1 的研究一直试图定义其在能量信号转导中的作用。然而,这些尝试由于完全敲除 SnRK1 会导致细胞死亡而受到严重阻碍。因此,我们在 snrk1α1 敲除背景下(snrk1α1/α2)生成了诱导型 amiRNA::SnRK1α2,以消除 SnRK1 的活性,从而在延长夜间处理引发的能量剥夺下,了解 SnRK1 信号转导的主要系统功能。我们分析了体内的磷酸化蛋白质组、蛋白质组和代谢组,发现 SnRK1 的激活对于抑制高能量需求的细胞过程(如蛋白质合成)是必不可少的。最显著的影响是在 snrk1α1/α2 突变体中核糖体蛋白 S6(RPS6)的持续高磷酸化。RPS6 是 TOR 信号的主要靶标,其磷酸化与翻译相关。SnRK1 和 TOR 之间的拮抗相互作用的进一步证据,通过在细胞质中 SnRK1α1 和 RAPTOR1B 的体内相互作用以及 SnRK1α1 在激酶测定中对 RAPTOR1B 的磷酸化来证明,这与动物系统相当。此外,snrk1α1/α2 突变体中几种质体蛋白磷酸化状态的变化水平表明与光合作用的调节存在意想不到的联系,光合作用是植物的主要能量来源。