Revisiting the role of light signaling in plant responses to salt stress.

IF 7.6 Q1 GENETICS & HEREDITY 园艺研究(英文) Pub Date : 2024-09-16 eCollection Date: 2025-01-01 DOI:10.1093/hr/uhae262
Yinxia Peng, Haiyan Zhu, Yiting Wang, Jin Kang, Lixia Hu, Ling Li, Kangyou Zhu, Jiarong Yan, Xin Bu, Xiujie Wang, Ying Zhang, Xin Sun, Golam Jalal Ahammed, Chao Jiang, Sida Meng, Yufeng Liu, Zhouping Sun, Mingfang Qi, Tianlai Li, Feng Wang
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Abstract

As one of the grave environmental hazards, soil salinization seriously limits crop productivity, growth, and development. When plants are exposed to salt stress, they suffer a sequence of damage mainly caused by osmotic stress, ion toxicity, and subsequently oxidative stress. As sessile organisms, plants have developed many physiological and biochemical strategies to mitigate the impact of salt stress. These strategies include altering root development direction, shortening the life cycle, accelerating dormancy, closing stomata to reduce transpiration, and decreasing biomass. Apart from being a prime energy source, light is an environmental signal that profoundly influences plant growth and development and also participates in plants' response to salt stress. This review summarizes the regulatory network of salt tolerance by light signals in plants, which is vital to further understanding plants' adaptation to high salinity. In addition, the review highlights potential future uses of genetic engineering and light supplement technology by light-emitting diode (LED) to improve crop growth in saline-alkali environments in order to make full use of the vast saline land.

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重新审视光信号在植物对盐胁迫反应中的作用。
作为严重的环境危害之一,土壤盐碱化严重限制了作物的生产力、生长和发育。当植物受到盐胁迫时,它们会遭受一连串的损害,主要由渗透胁迫、离子毒性以及随后的氧化胁迫引起。作为无柄生物,植物已经开发出许多生理和生化策略来减轻盐胁迫的影响。这些策略包括改变根系发育方向、缩短生命周期、加速休眠、关闭气孔以减少蒸腾作用以及减少生物量。光除了是一种主要的能量来源外,还是一种环境信号,对植物的生长和发育有深远影响,也参与植物对盐胁迫的响应。本综述总结了植物中光信号对耐盐性的调控网络,这对进一步了解植物对高盐度的适应性至关重要。此外,综述还强调了基因工程和发光二极管(LED)光补充技术在未来的潜在用途,以改善作物在盐碱环境中的生长,从而充分利用广袤的盐碱地。
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