Wang Zhen, Xia Mingzhe, Ma Rui, Zheng Zai
School of Agriculture, Forestry and Medicine, The Open University of China, Beijing, China.
State Key Laboratory of Plateau Ecology and Agriculture, Qinghai University, Xining, China.
Front Plant Sci. 2025 Apr 10;16:1557118. doi: 10.3389/fpls.2025.1557118. eCollection 2025.
Plants cope with Pi deficiency by triggering an array of adaptive responses, including the remodeling of root system architecture (RSA). grown on a Pi-deficient (-Pi) medium in transparent Petri dishes exhibits an inhibition of primary root (PR) growth. Previous work has shown that direct illumination on roots by blue light is both required and sufficient for the Pi deficiency-induced inhibition of PR growth. However, whether light illumination on shoots of seedlings contributes to the inhibition of PR growth under -Pi condition and whether light signaling pathway is involved in this process remain largely unknown. In addition to Pi deficiency-induced inhibition of PR growth, how light affects the transcriptomic changes under -Pi also remains elusive. Here, we found that the inhibition of PR growth under -Pi condition is determined by light illumination on roots instead of shoots. Further experiments revealed that blue light receptors CRY1/CRY2 and key regulator in blue light signaling pathway HY5 play minor roles in this process. Finally, we evaluated the light effects on the transcriptomic changes during the inhibition of PR growth under -Pi condition. We found that light promotes the expression of many genes involved in stress and phytohormones-related processes and has both upregulated and downregulated effects on the expression of typical phosphate starvation-induced (PSI) genes. Taken together, our work further demonstrates our previous hypothesis that the inhibition of PR growth under -Pi condition is caused by blue light-triggered chemical reactions, rather than blue light signaling pathways. Apart from the inhibition of PR growth under -Pi, light exposure also results in substantial alterations of transcriptome under -Pi condition, encouraging us to carefully evaluate the phenotype under illuminated, transparent Petri dishes.
植物通过触发一系列适应性反应来应对磷缺乏,包括根系结构(RSA)的重塑。在透明培养皿中的缺磷(-Pi)培养基上生长的植物表现出主根(PR)生长受到抑制。先前的研究表明,蓝光直接照射根系对于缺磷诱导的主根生长抑制是必需且充分的。然而,在-Pi条件下,光照对幼苗地上部分的照射是否有助于主根生长的抑制,以及光信号通路是否参与这一过程,在很大程度上仍然未知。除了缺磷诱导的主根生长抑制外,光照如何影响-Pi条件下的转录组变化也仍然不清楚。在这里,我们发现-Pi条件下主根生长的抑制是由根系而非地上部分的光照决定的。进一步实验表明,蓝光受体CRY1/CRY2和蓝光信号通路中的关键调节因子HY5在此过程中起次要作用。最后,我们评估了光照对-Pi条件下主根生长抑制过程中转录组变化的影响。我们发现光照促进了许多参与应激和植物激素相关过程的基因的表达,并且对典型的磷饥饿诱导(PSI)基因的表达既有上调作用也有下调作用。综上所述,我们的工作进一步证明了我们之前的假设,即-Pi条件下主根生长的抑制是由蓝光触发的化学反应引起的,而不是蓝光信号通路。除了-Pi条件下主根生长的抑制外,光照暴露还导致-Pi条件下转录组的大量改变,这促使我们仔细评估在光照的透明培养皿下的表型。