Wang Bin, Zhao Xianhai, Zhao Yunjun, Shanklin John, Zhao Qiao, Liu Chang-Jun
Biology Department, Brookhaven National Laboratory, Upton, NY, 11973, USA.
School of Life Sciences, Tsinghua University, Beijing, 100084, China.
New Phytol. 2021 Mar;229(6):3345-3359. doi: 10.1111/nph.17121. Epub 2020 Dec 31.
Phenylpropanoid metabolism represents a substantial metabolic sink for photosynthetically fixed carbon. The evolutionarily conserved Sucrose Non-Fermenting Related Kinase 1 (SnRK1) is a major metabolic sensor that reprograms metabolism upon carbon deprivation. However, it is not clear if and how the SnRK1-mediated sugar signaling pathway controls phenylpropanoid metabolism. Here, we show that Arabidopsis SnRK1 negatively regulates phenylpropanoid biosynthesis via a group of Kelch domain-containing F-box (KFB) proteins that are responsible for the ubiquitination and degradation of phenylalanine ammonia lyase (PAL). Downregulation of AtSnRK1 significantly promoted the accumulation of soluble phenolics and lignin polymers and drastically increased PAL cellular accumulation but only slightly altered its transcription level. Co-expression of SnRK1α with PAL in Nicotiana benthamiana leaves resulted in the severe attenuation of the latter's protein level, but protein interaction assays suggested PAL is not a direct substrate of SnRK1. Furthermore, up or downregulation of AtSnRK1 positively affected KFB gene expression, and energy starvation upregulated KFB expression, which partially depends on AtSnRK1. Collectively, our study reveals that SnRK1 negatively regulates phenylpropanoid biosynthesis, and KFB act as regulatory components of the SnRK1 signaling network, transcriptionally regulated by SnRK1 and subsequently mediate proteasomal degradation of PAL in response to the cellular carbon availability.
苯丙烷类代谢是光合固定碳的一个重要代谢库。进化上保守的蔗糖非发酵相关激酶1(SnRK1)是一种主要的代谢传感器,在碳缺乏时对代谢进行重新编程。然而,尚不清楚SnRK1介导的糖信号通路是否以及如何控制苯丙烷类代谢。在这里,我们表明拟南芥SnRK1通过一组含Kelch结构域的F-box(KFB)蛋白负调控苯丙烷类生物合成,这些蛋白负责苯丙氨酸解氨酶(PAL)的泛素化和降解。AtSnRK1的下调显著促进了可溶性酚类和木质素聚合物的积累,并大幅增加了PAL在细胞中的积累,但仅略微改变了其转录水平。在本氏烟草叶片中SnRK1α与PAL共表达导致后者蛋白水平严重降低,但蛋白质相互作用分析表明PAL不是SnRK1的直接底物。此外,AtSnRK1的上调或下调对KFB基因表达有正向影响,能量饥饿会上调KFB表达,这部分依赖于AtSnRK1。总的来说,我们的研究表明SnRK1负调控苯丙烷类生物合成,KFB作为SnRK1信号网络的调控成分,受SnRK1转录调控,随后响应细胞碳可用性介导PAL的蛋白酶体降解。