Tang Yong, Zhao Chun-Yan, Tan Shu-Tang, Xue Hong-Wei
National Key Laboratory of Plant Molecular Genetics, CAS Center for Excellence in Molecular Plant Sciences, Institute of Plant Physiology and Ecology, Shanghai Institutes for Biological Sciences, Chinese Academy of Sciences, Shanghai, China.
PLoS Genet. 2016 Aug 16;12(8):e1006252. doi: 10.1371/journal.pgen.1006252. eCollection 2016 Aug.
Normal leaf margin development is important for leaf morphogenesis and contributes to diverse leaf shapes in higher plants. We here show the crucial roles of an atypical type II phosphatidylinositol 4-kinase, PI4Kγ5, in Arabidopsis leaf margin development. PI4Kγ5 presents a dynamics expression pattern along with leaf development and a T-DNA mutant lacking PI4Kγ5, pi4kγ5-1, presents serrated leaves, which is resulted from the accelerated cell division and increased auxin concentration at serration tips. Studies revealed that PI4Kγ5 interacts with and phosphorylates a membrane-bound NAC transcription factor, ANAC078. Previous studies demonstrated that membrane-bound transcription factors regulate gene transcription by undergoing proteolytic process to translocate into nucleus, and ANAC078 undergoes proteolysis by cleaving off the transmembrane region and carboxyl terminal. Western blot analysis indeed showed that ANAC078 deleting of carboxyl terminal is significantly reduced in pi4kγ5-1, indicating that PI4Kγ5 is important for the cleavage of ANAC078. This is consistent with the subcellular localization observation showing that fluorescence by GFP-ANAC078 is detected at plasma membrane but not nucleus in pi4kγ5-1 mutant and that expression of ANAC078 deleting of carboxyl terminal, driven by PI4Kγ5 promoter, could rescue the leaf serration defects of pi4kγ5-1. Further analysis showed that ANAC078 suppresses the auxin synthesis by directly binding and regulating the expression of auxin synthesis-related genes. These results indicate that PI4Kγ5 interacts with ANAC078 to negatively regulate auxin synthesis and hence influences cell proliferation and leaf development, providing informative clues for the regulation of in situ auxin synthesis and cell division, as well as the cleavage and functional mechanism of membrane-bound transcription factors.
正常的叶缘发育对于叶片形态建成很重要,并且有助于高等植物形成多样的叶片形状。我们在此展示了一种非典型的II型磷脂酰肌醇4-激酶PI4Kγ5在拟南芥叶缘发育中的关键作用。PI4Kγ5随着叶片发育呈现动态表达模式,而缺乏PI4Kγ5的T-DNA突变体pi4kγ5-1呈现锯齿状叶片,这是由锯齿尖端细胞分裂加速和生长素浓度增加导致的。研究表明,PI4Kγ5与一个膜结合的NAC转录因子ANAC078相互作用并使其磷酸化。先前的研究表明,膜结合转录因子通过经历蛋白水解过程易位到细胞核中来调节基因转录,并且ANAC078通过切除跨膜区域和羧基末端进行蛋白水解。蛋白质印迹分析确实表明,在pi4kγ5-1中,缺失羧基末端的ANAC078显著减少,这表明PI4Kγ5对ANAC078的切割很重要。这与亚细胞定位观察结果一致,该结果显示在pi4kγ5-1突变体中,GFP-ANAC078的荧光在质膜而非细胞核中被检测到,并且由PI4Kγ5启动子驱动的缺失羧基末端的ANAC078的表达可以挽救pi4kγ5-1的叶片锯齿缺陷。进一步分析表明,ANAC078通过直接结合并调节生长素合成相关基因的表达来抑制生长素合成。这些结果表明,PI4Kγ5与ANAC078相互作用以负向调节生长素合成,从而影响细胞增殖和叶片发育,为原位生长素合成和细胞分裂的调控以及膜结合转录因子的切割和功能机制提供了有价值的线索。