Root Biology Center, State Key Laboratory for Conservation and Utilization of Subtropical Agro-Bioresources, South China Agricultural University, Guangzhou 510642, China.
Institute of Agricultural Resources and Environment, Guangdong Academy of Agricultural Sciences, Guangzhou 510640, China.
Cells. 2023 Jan 29;12(3):441. doi: 10.3390/cells12030441.
Acid soils are characterized by deficiencies in essential nutrient elements, oftentimes phosphorus (P), along with toxicities of metal elements, such as aluminum (Al), manganese (Mn), and cadmium (Cd), each of which significantly limits crop production. In recent years, impressive progress has been made in revealing mechanisms underlying tolerance to high concentrations of Al, Mn, and Cd. Phosphorus is an essential nutrient element that can alleviate exposure to potentially toxic levels of Al, Mn, and Cd. In this review, recent advances in elucidating the genes responsible for the uptake, translocation, and redistribution of Al, Mn, and Cd in plants are first summarized, as are descriptions of the mechanisms conferring resistance to these toxicities. Then, literature highlights information on interactions of P nutrition with Al, Mn, and Cd toxicities, particularly possible mechanisms driving P alleviation of these toxicities, along with potential applications for crop improvement on acid soils. The roles of plant phosphate (Pi) signaling and associated gene regulatory networks relevant for coping with Al, Mn, and Cd toxicities, are also discussed. To develop varieties adapted to acid soils, future work needs to further decipher involved signaling pathways and key regulatory elements, including roles fulfilled by intracellular Pi signaling. The development of new strategies for remediation of acid soils should integrate the mechanisms of these interactions between limiting factors in acid soils.
酸性土壤的特征是缺乏必需的营养元素,通常是磷 (P),同时还存在金属元素如铝 (Al)、锰 (Mn) 和镉 (Cd) 的毒性,这些元素都会严重限制作物的产量。近年来,在揭示对高浓度 Al、Mn 和 Cd 的耐受机制方面取得了令人瞩目的进展。磷是一种必需的营养元素,可减轻潜在毒性水平的 Al、Mn 和 Cd 的暴露。在这篇综述中,首先总结了阐明植物中 Al、Mn 和 Cd 吸收、转运和再分配相关基因的最新进展,并描述了赋予这些毒性抗性的机制。然后,文献重点介绍了磷营养与 Al、Mn 和 Cd 毒性相互作用的信息,特别是可能驱动磷缓解这些毒性的机制,以及在酸性土壤上改良作物的潜在应用。还讨论了植物磷酸盐 (Pi) 信号转导及其相关基因调控网络在应对 Al、Mn 和 Cd 毒性方面的作用。为了开发适应酸性土壤的品种,未来的工作需要进一步阐明涉及的信号通路和关键调节元件,包括细胞内 Pi 信号转导所发挥的作用。修复酸性土壤的新策略的发展应整合这些在酸性土壤限制因素之间相互作用的机制。