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铵对植物毒性的表型评估及潜在机制

Phenotype Assessment and Putative Mechanisms of Ammonium Toxicity to Plants.

作者信息

Xie Lin-Bei, Sun Li-Na, Zhang Zhong-Wei, Chen Yang-Er, Yuan Ming, Yuan Shu

机构信息

College of Resources, Sichuan Agricultural University, Chengdu 611130, China.

College of Life Science, Sichuan Agricultural University, Ya'an 625014, China.

出版信息

Int J Mol Sci. 2025 Mar 13;26(6):2606. doi: 10.3390/ijms26062606.

Abstract

Ammonium (NH) and nitrate (NO) are the primary inorganic nitrogen (N) sources that exert influence on plant growth and development. Nevertheless, when NH constitutes the sole or dominant N source, it can inhibit plant growth, a process also known as ammonium toxicity. Over multiple decades, researchers have shown increasing interest in the primary causes, mechanisms, and detoxification strategies of ammonium toxicity. Despite this progress, the current investigations into the mechanisms of ammonium toxicity remain equivocal. This review initially presents a comprehensive assessment of phenotypes induced by ammonium toxicity. Additionally, this review also recapitulates the existing mechanisms of ammonium toxicity, such as ion imbalance, disruption of the phytohormones homeostasis, ROS (reactive oxygen species) burst, energy expenditure, and rhizosphere acidification. We conclude that alterations in carbon-nitrogen (C-N) metabolism induced by high NH may be one of the main reasons for ammonium toxicity and that SnRK1 (Sucrose non-fermenting 1-related kinase) might be involved in this process. The insights proffered in this review will facilitate the exploration of NH tolerance mechanisms and the development of NH-tolerant crops in agricultural industries.

摘要

铵(NH)和硝酸盐(NO)是影响植物生长发育的主要无机氮(N)源。然而,当铵成为唯一或主要的氮源时,它会抑制植物生长,这个过程也被称为铵毒。几十年来,研究人员对铵毒的主要成因、机制及解毒策略表现出越来越浓厚的兴趣。尽管取得了这一进展,但目前对铵毒机制的研究仍不明确。本综述首先全面评估了铵毒诱导的表型。此外,本综述还概述了现有的铵毒机制,如离子失衡、植物激素稳态破坏、活性氧(ROS)爆发、能量消耗和根际酸化。我们得出结论,高铵诱导的碳氮(C-N)代谢变化可能是铵毒的主要原因之一,且蔗糖非发酵1相关激酶1(SnRK1)可能参与了这一过程。本综述提供的见解将有助于探索耐铵机制以及农业产业中耐铵作物的培育。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f931/11941816/43a5bc00be33/ijms-26-02606-g001.jpg

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