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通过植物和微生物的优化相互作用来减轻土壤中的重金属压力。

Mitigation of heavy metal stress in the soil through optimized interaction between plants and microbes.

机构信息

Division of Research and Innovation, Department of Biotechnology, Saveetha School of Engineering, Saveetha Institute of Medical and Technical Science, Chennai, Tamil Nadu, India.

College of Resources and Environment, Southwest University, Chongqing, 400716, China.

出版信息

J Environ Manage. 2023 Nov 1;345:118732. doi: 10.1016/j.jenvman.2023.118732. Epub 2023 Aug 1.

Abstract

Agricultural as well as industrial processes, such as mining and textile activities, are just a few examples of anthropogenic activities that have a long-term negative impact on the environment. Each of the aforementioned factors increases the concentration of heavy metals in soil. Heavy metal contamination in soil causes a wide range of environmental issues and is harmful to microbes, plants, and animals. Because of their non-biodegradability and toxic effects, preventing additional metal contamination and remediating the vast majority of contaminated sites around the world is critical. Hence, this review focuses on the effects of metal contamination on soil microbes, as well as plant-microbe interactions. Plant-associated probiotics reduce metal accumulation; the introduction of beneficial microbes is regarded as one of the most promising approaches to improving metal stress tolerance; thus, the study focuses on plant-microbe interactions as well as their actual implications via phytoremediation. Plant-microbe interaction can play an important role in acclimating vegetation (plants) to metalliferous conditions and should thus be studied to improve microbe-aided metal tolerance in plants. Plant-interacted microbes reduce metal accumulation in plant cells and metal bioaccumulation in the soil through a variety of processes. A novel phytobacterial approach, such as genetically modified microbes, is now being used to improve heavy metal cleanup as well as stress tolerance among plants. This review examines our current understanding of such negative consequences of heavy metal stresses, signaling responses, and the role of plant-associated microbiota in heavy metal stress tolerance and interaction.

摘要

农业和工业过程,如采矿和纺织活动,只是少数对环境有长期负面影响的人为活动的例子。上述因素中的每一个都增加了土壤中重金属的浓度。土壤中的重金属污染导致了广泛的环境问题,对微生物、植物和动物都有害。由于其不可生物降解性和毒性效应,防止额外的金属污染和修复世界各地的绝大多数污染地点至关重要。因此,本综述重点介绍了金属污染对土壤微生物以及植物-微生物相互作用的影响。植物相关的益生菌可减少金属积累;引入有益微生物被认为是提高金属胁迫耐受性的最有前途的方法之一;因此,研究重点是植物-微生物相互作用及其通过植物修复的实际意义。植物-微生物相互作用可以在适应植被(植物)的富金属条件方面发挥重要作用,因此应该进行研究,以提高植物中微生物辅助的金属耐受性。与植物相互作用的微生物通过多种过程减少植物细胞中的金属积累和土壤中的金属生物积累。一种新的植物细菌方法,如基因修饰的微生物,目前正被用于改善重金属清理以及植物的胁迫耐受性。本综述考察了我们对重金属胁迫的这些负面影响、信号响应以及植物相关微生物群在重金属胁迫耐受性和相互作用中的作用的现有理解。

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