Transformative strategies for saline soil restoration: Harnessing halotolerant microorganisms and advanced technologies.

IF 4.2 3区 生物学 Q2 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
S Salma Santhosh, S Meena, M Baskar, S Karthikeyan, C Vanniarajan, T Ramesh
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引用次数: 0

Abstract

Soil salinity is a critical global challenge that severely impairs crop productivity and soil health by disrupting water uptake, nutrient acquisition, and ionic balance in plants, thereby posing a significant threat to food security. This review underscores innovative strategies to mitigate salinity stress, focusing on the pivotal role of halotolerant microorganisms and their synergistic interactions with plants. Halotolerant microorganisms enhance plant resilience through diverse mechanisms under salinity, including exopolysaccharide production, sodium sequestration, and phytohormone regulation. It improves ionic balance, nutrient uptake, and root development, facilitated by osmoregulatory and genetic adaptations. In this discussion, we explored emerging technologies, including genome editing (e.g., CRISPR-Cas9), synthetic biology, and advanced omics-based tools such as metagenomics and metatranscriptomics. These cutting-edge approaches offer profound insights into microbial diversity and their functional adaptations to saline environments. By leveraging these technologies, it is possible to design targeted bioremediation strategies through the customization of microbial functionalities to address specific environmental challenges effectively. Advanced methodologies, such as microbial volatile organic compounds (mVOCs), nanotechnology, and stress-tolerant microbial consortia, significantly enhance plant stress tolerance and facilitate soil restoration. Moreover, integrating digital technologies, including machine learning and artificial intelligence (AI), optimizes bioremediation processes by providing precise, scalable, and adaptable solutions tailored to diverse agricultural ecosystems. The synergistic application of halotolerant microbe-mediated approaches with advanced biotechnological and digital innovations presents a transformative strategy for saline soil restoration. Future research should focus on harmonizing these technologies and methodologies to maximize plant-microbe interactions and establish resilient, sustainable agricultural systems.

盐碱地恢复的变革战略:利用耐盐微生物和先进技术。
土壤盐分是一项重大的全球挑战,它通过破坏植物的水分吸收、养分获取和离子平衡,严重损害作物生产力和土壤健康,从而对粮食安全构成重大威胁。这篇综述强调了减轻盐胁迫的创新策略,重点关注耐盐微生物的关键作用及其与植物的协同相互作用。耐盐微生物通过多种机制增强植物在盐度下的抗逆性,包括胞外多糖的产生、钠的固存和植物激素的调节。它通过渗透调节和遗传适应促进离子平衡、养分吸收和根系发育。在本次讨论中,我们探讨了新兴技术,包括基因组编辑(如CRISPR-Cas9)、合成生物学和先进的基于组学的工具,如宏基因组学和亚转录组学。这些前沿方法为微生物多样性及其对盐水环境的功能适应提供了深刻的见解。通过利用这些技术,可以通过定制微生物功能来设计有针对性的生物修复策略,从而有效地解决特定的环境挑战。先进的方法,如微生物挥发性有机化合物(mVOCs)、纳米技术和抗逆性微生物群落,显著提高了植物的抗逆性,促进了土壤的恢复。此外,整合数字技术,包括机器学习和人工智能(AI),通过提供针对不同农业生态系统量身定制的精确、可扩展和适应性强的解决方案,优化生物修复过程。耐盐微生物介导的方法与先进的生物技术和数字创新的协同应用为盐碱地恢复提供了一种变革性的策略。未来的研究应侧重于协调这些技术和方法,以最大限度地发挥植物与微生物的相互作用,并建立有弹性的可持续农业系统。
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来源期刊
World journal of microbiology & biotechnology
World journal of microbiology & biotechnology 工程技术-生物工程与应用微生物
CiteScore
6.30
自引率
2.40%
发文量
257
审稿时长
2.5 months
期刊介绍: World Journal of Microbiology and Biotechnology publishes research papers and review articles on all aspects of Microbiology and Microbial Biotechnology. Since its foundation, the Journal has provided a forum for research work directed toward finding microbiological and biotechnological solutions to global problems. As many of these problems, including crop productivity, public health and waste management, have major impacts in the developing world, the Journal especially reports on advances for and from developing regions. Some topics are not within the scope of the Journal. Please do not submit your manuscript if it falls into one of the following categories: · Virology · Simple isolation of microbes from local sources · Simple descriptions of an environment or reports on a procedure · Veterinary, agricultural and clinical topics in which the main focus is not on a microorganism · Data reporting on host response to microbes · Optimization of a procedure · Description of the biological effects of not fully identified compounds or undefined extracts of natural origin · Data on not fully purified enzymes or procedures in which they are applied All articles published in the Journal are independently refereed.
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