State Key Laboratory of Plant Environmental Resilience, Frontiers Science Center for Molecular Design Breeding (MOE), Center for Maize Functional Genomics and Molecular Breeding, College of Biological Sciences, China Agricultural University, Beijing, China.
Plant Biotechnol J. 2024 Nov;22(11):3085-3098. doi: 10.1111/pbi.14431. Epub 2024 Jul 22.
As an essential macronutrient, phosphorus (P) is often a limiting nutrient because of its low availability and mobility in soils. Drought is a major environmental stress that reduces crop yield. How plants balance and combine P-starvation responses (PSRs) and drought resistance is unclear. In this study, we identified the transcription factor ZmPHR1 as a major regulator of PSRs that modulates phosphate (Pi) signaling and homeostasis. We found that maize zmphr1 mutants had reduced P concentration and were sensitive to Pi starvation, whereas ZmPHR1-OE lines displayed elevated Pi concentration and yields. In addition, 57% of PSR genes and nearly 70% of ZmPHR1-regulated PSR genes in leaves were transcriptionally responsive to drought. Under moderate and early drought conditions, the Pi concentration of maize decreased, and PSR genes were up-regulated before drought-responsive genes. The ZmPHR1-OE lines exhibited drought-resistant phenotypes and reduced stomatal apertures, whereas the opposite was true of the zmphr1 mutants. ZmPT7-OE lines and zmspx3 mutants, which had elevated Pi concentration, also exhibited drought resistance, but zmpt7 mutants were sensitive to drought. Our results suggest that ZmPHR1 plays a central role in integrating Pi and drought signals and that Pi homeostasis improves the ability of maize to combat drought.
作为一种必需的大量营养素,磷(P)通常是一种限制营养物质,因为它在土壤中的可用性和流动性较低。干旱是一种主要的环境胁迫,会降低作物产量。植物如何平衡和结合磷饥饿反应(PSR)和抗旱性尚不清楚。在这项研究中,我们鉴定了转录因子 ZmPHR1 作为 PSR 的主要调节剂,调节磷酸盐(Pi)信号和稳态。我们发现,玉米 zmphr1 突变体的 P 浓度降低,对 Pi 饥饿敏感,而 ZmPHR1-OE 系显示出提高的 Pi 浓度和产量。此外,叶片中 57%的 PSR 基因和近 70%的 ZmPHR1 调控的 PSR 基因对干旱具有转录响应性。在中度和早期干旱条件下,玉米的 Pi 浓度降低,PSR 基因在干旱响应基因之前上调。ZmPHR1-OE 系表现出抗旱表型和减小的气孔开度,而 zmphr1 突变体则相反。具有较高 Pi 浓度的 ZmPT7-OE 系和 zmspx3 突变体也表现出抗旱性,但 zmpt7 突变体对干旱敏感。我们的结果表明,ZmPHR1 在整合 Pi 和干旱信号方面发挥着核心作用,而 Pi 稳态提高了玉米抵御干旱的能力。