Amity Institute of Organic Agriculture (AIOA), Amity University Uttar Pradesh, Sector-125, Noida, India.
Amity Institute of Microbial Technology, Amity University Uttar Pradesh, Sector-125, Noida, India.
J Hazard Mater. 2021 Apr 15;408:124820. doi: 10.1016/j.jhazmat.2020.124820. Epub 2020 Dec 13.
Exogenous applications of silicon (Si) can initiate cellular defence pathways to enhance plant resistance to abiotic and biotic stresses. Plant Si accumulation is regulated by several transporters of silicic acid (e.g. Lsi1, Lsi2, and Lsi6), but the precise mechanisms involved in overall Si transport and its beneficial effects remains unclear. In stressed plants, the accumulation of Si leads to a defence mechanism involving the formation of amorphous or hydrated silicic acid caused by their polymerization and interaction with other organic substances. Silicon also regulates plant ionic homeostasis, which involves the nutrient acquisition, availability, and replenishment in the soil through biogeochemical cycles. Furthermore, Si is implicated in modulating ethylene-dependent and jasmonate pathways, as well as other phytohormones, particularly under stress conditions. Crosstalk between Si and phytohormones could lead to improvements in Si-mediated crop growth, especially when plants are exposed to stress. The integration of Si with reactive oxygen species (ROS) metabolism appears to be a part of the signaling cascade that regulates plant phytohormone homeostasis, as well as morphological, biochemical, and molecular responses. This review aims to provide an update on Si interplays with ROS, phytohormones, and other signaling molecules that regulate plant development under stress conditions.
外源硅 (Si) 的应用可以启动细胞防御途径,增强植物对非生物和生物胁迫的抗性。植物 Si 的积累受几种硅酸 (如 Lsi1、Lsi2 和 Lsi6) 的转运蛋白调节,但涉及整体 Si 转运及其有益效应的确切机制仍不清楚。在受胁迫的植物中,Si 的积累导致防御机制的形成,涉及无定形或水合硅酸的形成,这是由它们的聚合和与其他有机物质的相互作用引起的。硅还调节植物离子内稳性,涉及通过生物地球化学循环在土壤中获取、利用和补充养分。此外,Si 被认为参与调节乙烯依赖型和茉莉酸途径以及其他植物激素,特别是在胁迫条件下。Si 与植物激素之间的串扰可能导致 Si 介导的作物生长得到改善,尤其是当植物受到胁迫时。Si 与活性氧 (ROS) 代谢的整合似乎是调节植物植物激素内稳性以及形态、生化和分子反应的信号级联的一部分。本综述旨在提供 Si 与 ROS、植物激素和其他信号分子相互作用的最新信息,这些相互作用调节植物在胁迫条件下的发育。