Shanghai Collaborative Innovation Center of Agri-Seeds, Joint Center for Single Cell Biology, School of Agriculture and Biology, Shanghai Jiao Tong University, Shanghai, 200240, China.
New Phytol. 2024 Oct;244(1):116-130. doi: 10.1111/nph.19785. Epub 2024 May 4.
Leaf senescence is a complex process regulated by developmental and environmental factors, and plays a pivotal role in the development and life cycle of higher plants. Casein kinase 1 (CK1) is a highly conserved serine/threonine protein kinase in eukaryotes and functions in various cellular processes including cell proliferation, light signaling and hormone effects of plants. However, the biological function of CK1 in plant senescence remains unclear. Through systemic genetic and biochemical studies, we here characterized the function of Arabidopsis EL1-like (AEL), a CK1, in promoting leaf senescence by stimulating ethylene biosynthesis through phosphorylating transcription factor WRKY22. Seedlings lacking or overexpressing AELs presented delayed or accelerated leaf senescence, respectively. AELs interact with and phosphorylate WRKY22 at Thr57, Thr60 and Ser69 residues to enhance whose transactivation activity. Being consistent, increased or suppressed phosphorylation of WRKY22 resulted in the promoted or delayed leaf senescence. WRKY22 directly binds to promoter region and stimulates the transcription of 1-amino-cyclopropane-1-carboxylate synthase 7 gene to promote ethylene level and hence leaf senescence. Our studies demonstrated the crucial role of AEL-mediated phosphorylation in regulating ethylene biosynthesis and promoting leaf senescence by enhancing WRKY22 transactivation activity, which helps to elucidate the fine-controlled ethylene biosynthesis and regulatory network of leaf senescence.
叶片衰老受发育和环境因子的调控,是高等植物生长发育和生命周期中的一个关键过程。在真核生物中,酪蛋白激酶 1(CK1)是一种高度保守的丝氨酸/苏氨酸蛋白激酶,其功能涉及细胞增殖、光信号和植物激素效应等多种细胞过程。然而,CK1 在植物衰老中的生物学功能尚不清楚。通过系统的遗传和生化研究,我们在这里鉴定了拟南芥 EL1 样(AEL)作为 CK1 在通过磷酸化转录因子 WRKY22 来促进乙烯生物合成中促进叶片衰老的功能。缺乏或过表达 AEL 的幼苗分别表现出叶片衰老延迟或加速。AEL 与 WRKY22 相互作用,并在 Thr57、Thr60 和 Ser69 残基上磷酸化 WRKY22,以增强其转录激活活性。与此一致,WRKY22 的磷酸化增加或减少导致叶片衰老的提前或延迟。WRKY22 直接结合启动子区域并刺激 1-氨基环丙烷-1-羧酸合酶 7 基因的转录,以促进乙烯水平和叶片衰老。我们的研究表明,AEL 介导的磷酸化在通过增强 WRKY22 的转录激活活性来调节乙烯生物合成和促进叶片衰老中起着关键作用,这有助于阐明精细控制的乙烯生物合成和叶片衰老的调控网络。