Division of Applied Life Science (BK21 PLUS), Plant Molecular Biology and Biotechnology Research Center, Gyeongsang National University, Jinju 52828, Korea.
Institute of Agriculture & Life Science, Gyeongsang National University, Jinju 52828, Korea.
Mol Cells. 2017 Oct;40(10):697-705. doi: 10.14348/molcells.2017.0192. Epub 2017 Oct 17.
The maintenance of inorganic phosphate (Pi) homeostasis is essential for plant growth and yield. Plants have evolved strategies to cope with Pi starvation at the transcriptional, post-transcriptional, and post-translational levels, which maximizes its availability. Many transcription factors, miRNAs, and transporters participate in the Pi starvation signaling pathway where their activities are modulated by sugar and phytohormone signaling. Environmental stresses significantly affect the uptake and utilization of nutrients by plants, but their effects on the Pi starvation response remain unclear. Recently, we reported that Pi starvation signaling is affected by abiotic stresses such as salt, abscisic acid, and drought. In this review, we identified transcription factors, such as MYB, WRKY, and zinc finger transcription factors with functions in Pi starvation and other environmental stress signaling. analysis of the promoter regions of Pi starvation-responsive genes, including phosphate transporters, microRNAs, and phosphate starvation-induced genes, suggest that their expression may be regulated by other environmental stresses, such as hormones, drought, cold, heat, and pathogens as well as by Pi starvation. Thus, we suggest the possibility of cross-talk between Pi starvation signaling and other environmental stress signaling pathways.
维持无机磷酸盐(Pi)的动态平衡对于植物的生长和产量至关重要。植物已经进化出了在转录、转录后和翻译后水平上应对 Pi 饥饿的策略,从而最大限度地提高 Pi 的可用性。许多转录因子、miRNA 和转运蛋白参与 Pi 饥饿信号通路,其活性受到糖和植物激素信号的调节。环境胁迫会显著影响植物对养分的吸收和利用,但它们对 Pi 饥饿反应的影响尚不清楚。最近,我们报道 Pi 饥饿信号通路受到盐、脱落酸和干旱等非生物胁迫的影响。在这篇综述中,我们鉴定了在 Pi 饥饿和其他环境胁迫信号中具有功能的转录因子,如 MYB、WRKY 和锌指转录因子。对 Pi 饥饿响应基因的启动子区域(包括磷酸盐转运蛋白、microRNAs 和磷酸盐饥饿诱导基因)的分析表明,它们的表达可能受到其他环境胁迫(如激素、干旱、寒冷、高温和病原体)以及 Pi 饥饿的调节。因此,我们提出了 Pi 饥饿信号与其他环境胁迫信号通路之间存在交叉对话的可能性。