Fan Xiaoning, Zhou Xiaoqin, Chen Hui, Tang Ming, Xie Xianan
State Key Laboratory of Conservation and Utilization of Subtropical Agro-Bioresources, Guangdong Laboratory for Lingnan Modern Agriculture, Guangdong Key Laboratory for Innovative Development and Utilization of Forest Plant Germplasm, College of Forestry and Landscape Architecture, South China Agricultural University, Guangzhou, China.
Front Plant Sci. 2021 Oct 15;12:663477. doi: 10.3389/fpls.2021.663477. eCollection 2021.
In nature, land plants as sessile organisms are faced with multiple nutrient stresses that often occur simultaneously in soil. Nitrogen (N), phosphorus (P), sulfur (S), zinc (Zn), and iron (Fe) are five of the essential nutrients that affect plant growth and health. Although these minerals are relatively inaccessible to plants due to their low solubility and relative immobilization, plants have adopted coping mechanisms for survival under multiple nutrient stress conditions. The double interactions between N, Pi, S, Zn, and Fe have long been recognized in plants at the physiological level. However, the molecular mechanisms and signaling pathways underlying these cross-talks in plants remain poorly understood. This review preliminarily examined recent progress and current knowledge of the biochemical and physiological interactions between macro- and micro-mineral nutrients in plants and aimed to focus on the cross-talks between N, Pi, S, Zn, and Fe uptake and homeostasis in plants. More importantly, we further reviewed current studies on the molecular mechanisms underlying the cross-talks between N, Pi, S, Zn, and Fe homeostasis to better understand how these nutrient interactions affect the mineral uptake and signaling in plants. This review serves as a basis for further studies on multiple nutrient stress signaling in plants. Overall, the development of an integrative study of multiple nutrient signaling cross-talks in plants will be of important biological significance and crucial to sustainable agriculture.
在自然界中,陆地植物作为固着生物面临着多种养分胁迫,这些胁迫在土壤中常常同时发生。氮(N)、磷(P)、硫(S)、锌(Zn)和铁(Fe)是影响植物生长和健康的五种必需养分。尽管由于这些矿物质的低溶解度和相对固定性,植物相对难以获取它们,但植物已经采用了应对机制以在多种养分胁迫条件下生存。氮、磷、硫、锌和铁之间的双重相互作用在植物生理水平上早已得到认可。然而,植物中这些相互作用背后的分子机制和信号通路仍知之甚少。本综述初步考察了植物中大量和微量矿物质养分之间生化和生理相互作用的最新进展和现有知识,旨在聚焦于植物中氮、磷、硫、锌和铁吸收及稳态之间的相互作用。更重要的是,我们进一步综述了关于氮、磷、硫、锌和铁稳态之间相互作用背后分子机制的当前研究,以便更好地理解这些养分相互作用如何影响植物中的矿物质吸收和信号传导。本综述为进一步研究植物中的多种养分胁迫信号传导奠定了基础。总体而言,开展植物中多种养分信号相互作用的综合研究具有重要的生物学意义,对可持续农业至关重要。