Salinity Stress in Legume Crops: A Comprehensive Review of Effects, Mechanisms, and Mitigation Strategies

Sahil B Chaudhary, Deshraj Gujjar, Bijendra Kumar, Smit Patel, Simran
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Abstract

Salinity stress poses a significant challenge to global crop production, particularly in regions relying heavily on irrigation. This review explores the detrimental impacts of salt stress on grain legumes, crucial plants renowned for their high protein content and nitrogen-fixing ability. The increasing use of saline groundwater and the accumulation of soil salts threaten the sustainability of legume cultivation worldwide. Salt stress disrupts fundamental physiological processes in legumes, including photosynthesis, hormone regulation, and nutrient uptake, resulting in substantial reductions in yield and quality. It exacerbates osmotic stress and ion toxicity, severely compromising plant health and productivity. Understanding the intricate mechanisms underlying salt tolerance in grain legumes is pivotal for developing effective mitigation strategies. This review synthesizes current knowledge on the tolerance mechanisms employed by legumes to cope with salt stress. It examines various management approaches aimed at enhancing their resilience under saline conditions. Key findings highlight that salt stress can lead to over 70% reductions in growth and variable decreases in yield and mineral absorption rates. Innovative strategies such as genetic engineering of transgenic varieties and advanced crop management practices offer promising avenues to enhance salt tolerance and boost legume productivity on salinity-affected soils. Furthermore, insights into mechanisms such as ion compartmentalization and ion excretion provide critical pathways for developing salt-resistant legume cultivars.  Apoplastic acidification emerges as a reliable indicator of salt stress resistance in these plants. By elucidating these mechanisms and strategies, this review contributes to the ongoing efforts aimed at safeguarding legume production and global food security in the face of escalating salinity stress.
豆科作物的盐度胁迫:影响、机理和缓解策略综述
盐胁迫对全球作物生产构成重大挑战,尤其是在严重依赖灌溉的地区。本综述探讨了盐胁迫对禾本科豆类植物的不利影响,禾本科豆类植物是以高蛋白含量和固氮能力著称的重要植物。含盐地下水使用量的增加和土壤盐分的积累威胁着全球豆科植物种植的可持续性。盐胁迫破坏了豆科植物的基本生理过程,包括光合作用、激素调节和养分吸收,导致产量和质量大幅下降。盐胁迫会加剧渗透胁迫和离子毒性,严重损害植物健康和生产力。了解谷物豆科植物耐盐性的复杂机制对于制定有效的缓解策略至关重要。本综述综述了豆科植物应对盐胁迫所采用的耐盐机制的现有知识。它探讨了旨在提高豆科植物在盐碱条件下的抗逆性的各种管理方法。主要研究结果强调,盐胁迫会导致生长量减少 70% 以上,产量和矿物质吸收率也会出现不同程度的下降。转基因品种的基因工程和先进的作物管理方法等创新策略为增强耐盐性和提高豆科植物在受盐碱影响的土壤中的产量提供了很好的途径。此外,对离子分隔和离子排泄等机制的深入研究为开发耐盐豆科植物品种提供了重要途径。 凋亡酸化是这些植物抗盐胁迫的可靠指标。通过阐明这些机制和策略,这篇综述有助于在盐胁迫不断升级的情况下保障豆科植物生产和全球粮食安全的持续努力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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