School of Life Science and Engineering, Henan University of Urban Construction, Pingdingshan, China.
Solid-State Fermentation Resource Utilization Key Laboratory of Sichuan Province, Department of Agriculture Forestry and Food Engineering, Yibin University, Yibin, China.
Plant Cell Environ. 2024 Aug;47(8):3253-3265. doi: 10.1111/pce.14944. Epub 2024 May 13.
Day length modulates hypocotyl elongation in seedlings to optimize their overall fitness. Variations in cell growth-associated genes are regulated by several transcription factors. However, the specific transcription factors through which the plant clock increases plant fitness are still being elucidated. In this study, we identified the no apical meristem, Arabidopsis thaliana-activating factor (ATAF-1/2), and cup-shaped cotyledon (NAC) family transcription factor ATAF1 as a novel repressor of hypocotyl elongation under a short-day (SD) photoperiod. Variations in day length profoundly affected the transcriptional and protein levels of ATAF1. ATAF1-deficient mutant exhibited increased hypocotyl length and cell growth-promoting gene expression under SD conditions. Moreover, ATAF1 directly targeted and repressed the expression of the cycling Dof factor 1/5 (CDF1/5), two key transcription factors involved in hypocotyl elongation under SD conditions. Additionally, ATAF1 interacted with and negatively modulated the effects of phytochrome-interacting factor (PIF), thus inhibiting PIF-promoted gene expression and hypocotyl elongation. Taken together, our results revealed ATAF1-PIF as a crucial pair modulating the expression of key transcription factors to facilitate plant growth during day/night cycles under fluctuating light conditions.
光照时长通过调控与细胞生长相关基因的表达来调控幼苗下胚轴的伸长,以优化其整体适应性。然而,植物生物钟通过哪些特定的转录因子来提高植物适应性仍在研究之中。在这项研究中,我们鉴定了拟南芥 no apical meristem (NAC) 家族转录因子 ATAF1/2 和 cup-shaped cotyledon (CUC) 为一个在短日照条件下抑制下胚轴伸长的新的转录因子。光照时长的变化深刻影响了 ATAF1 的转录和蛋白水平。在短日照条件下,ataf1 缺失突变体表现出下胚轴伸长增加和促进细胞生长的基因表达增加。此外,ATAF1 直接靶向并抑制了环化 Dof 因子 1/5 (CDF1/5) 的表达,CDF1/5 是两个在短日照条件下参与下胚轴伸长的关键转录因子。此外,ATAF1 与光受体相互作用因子 (PIF) 相互作用,并负调控其效应,从而抑制 PIF 促进的基因表达和下胚轴伸长。综上所述,我们的研究结果揭示了 ATAF1-PIF 作为一个关键的调控因子对关键转录因子表达的调控,以促进植物在光周期下生长。