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了解盐分胁迫对植物的影响,并开发由耐盐植物促生菌和 CRISPR/Cas9 介导的可持续管理策略。

Understanding the salinity stress on plant and developing sustainable management strategies mediated salt-tolerant plant growth-promoting rhizobacteria and CRISPR/Cas9.

机构信息

Department of Environmental Science, V.B.S. Purvanchal University, Jaunpur, India.

Biotechnology Program, Dr. RamManohar Lohia Avadh University, Ayodhya, India.

出版信息

Biotechnol Genet Eng Rev. 2023 Oct;39(2):311-347. doi: 10.1080/02648725.2022.2131958. Epub 2022 Oct 17.

Abstract

Soil salinity is a worldwide concern that decreases plant growth performance in agricultural fields and contributes to food scarcity. Salt stressors have adverse impacts on the plant's ionic, osmotic, and oxidative balance, as well as numerous physiological functions. Plants have a variety of coping strategies to deal with salt stress, including osmosensing, osmoregulation, ion-homeostasis, increased antioxidant synthesis, and so on. Not only does salt stress cause oxidative stress but also many types of stress do as well, thus plants have an effective antioxidant system to battle the negative effects of excessive reactive oxygen species produced as a result of stress. Rising salinity in the agricultural field affects crop productivity and plant development considerably; nevertheless, plants have a well-known copying mechanism that shields them from salt stress by facilitated production of secondary metabolites, antioxidants, ionhomeostasis, ABAbiosynthesis, and so on. To address this problem, various environment-friendly solutions such as salt-tolerant plant growth-promoting rhizobacteria, eco-friendly additives, and foliar applications of osmoprotectants/antioxidants are urgently needed. CRISPR/Cas9, a new genetic scissor, has recently been discovered to be an efficient approach for reducing salt stress in plants growing in saline soil. Understanding the processes underlying these physiological and biochemical responses to salt stress might lead to more effective crop yield control measures in the future. In order to address this information, the current review discusses recent advances in plant stress mechanisms against salinity stress-mediated antioxidant systems, as well as the development of appropriate long-term strategies for plant growth mediated by CRISPR/Cas9 techniques under salinity stress.

摘要

土壤盐度是一个全球性问题,它会降低农业领域中植物的生长性能,导致粮食短缺。盐胁迫会对植物的离子、渗透和氧化平衡以及许多生理功能产生不利影响。植物有多种应对策略来应对盐胁迫,包括渗透压感知、渗透调节、离子稳态、增加抗氧化剂合成等。盐胁迫不仅会导致氧化应激,许多类型的应激也是如此,因此植物有一个有效的抗氧化系统来对抗应激产生的过量活性氧产生的负面影响。农业领域中盐度的上升会极大地影响作物生产力和植物发育;然而,植物有一个众所周知的复制机制,通过促进次生代谢物、抗氧化剂、离子稳态、ABA 合成等的产生来保护它们免受盐胁迫。为了解决这个问题,需要各种环保解决方案,如耐盐植物促生根际细菌、环保添加剂和叶面施用渗透调节剂/抗氧化剂。CRISPR/Cas9 是一种新的遗传剪刀,最近被发现是一种减少盐渍土壤中植物盐胁迫的有效方法。了解这些对盐胁迫的生理和生化反应的过程可能会导致未来更有效的作物产量控制措施。为了解决这个问题,本综述讨论了植物对盐胁迫介导的抗氧化系统的应激机制的最新进展,以及在盐胁迫下通过 CRISPR/Cas9 技术介导的植物生长的适当长期策略的发展。

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