Tian Tian, Ma Lin, Liu Ying, Xu Di, Chen Qingshuai, Li Gang
State Key Laboratory of Crop Biology, College of Life Sciences, Shandong Agricultural University, Tai'an 271018, China.
State Key Laboratory of Crop Biology, College of Life Sciences, Shandong Agricultural University, Tai'an 271018, China
Plant Cell. 2020 May;32(5):1574-1588. doi: 10.1105/tpc.20.00021. Epub 2020 Mar 9.
Leaf senescence is tightly regulated by numerous internal cues and external environmental signals. The process of leaf senescence is promoted by a low ratio of red to far-red (R:FR) light, FR light, or extended darkness and is repressed by a high ratio of R:FR light or R light. However, the precise regulatory mechanisms by which plants assess external light signals and their internal cues to initiate and control the process of leaf senescence remain largely unknown. In this study, we discovered that the light-signaling protein FAR-RED ELONGATED HYPOCOTYL3 (FHY3) negatively regulates age-induced and light-mediated leaf senescence in Arabidopsis (). FHY3 directly binds to the promoter region of transcription factor gene to repress its expression, thus negatively regulating salicylic acid biosynthesis and senescence. Both the loss-of-function mutant and -overexpressing Arabidopsis plants exhibited early senescence under high R:FR light conditions, indicating that the FHY3- transcriptional module specifically prevents leaf senescence under high R:FR light conditions. This study reveals the physiological and molecular functions of FHY3 and WRKY28 in leaf senescence and provides insight into the regulatory mechanism by which plants integrate dynamic environmental light signals and internal cues to initiate and control leaf senescence.
叶片衰老受到众多内部信号和外部环境信号的严格调控。低红/远红光比例(R:FR)、远红光或长时间黑暗会促进叶片衰老过程,而高R:FR光比例或红光则会抑制该过程。然而,植物如何评估外部光信号及其内部信号以启动和控制叶片衰老过程的精确调控机制仍 largely未知。在本研究中,我们发现光信号蛋白远红光伸长下胚轴3(FHY3)对拟南芥中年龄诱导和光介导的叶片衰老起负调控作用。FHY3直接结合转录因子基因的启动子区域以抑制其表达,从而负调控水杨酸生物合成和衰老。功能缺失突变体和过表达拟南芥植株在高R:FR光条件下均表现出早衰,表明FHY3-WRKY28转录模块在高R:FR光条件下特异性地防止叶片衰老。本研究揭示了FHY3和WRKY28在叶片衰老中的生理和分子功能,并深入了解了植物整合动态环境光信号和内部信号以启动和控制叶片衰老的调控机制。