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通过微生物接种剂和豆科植物的协同应用提高重金属污染土壤的修复潜力。

Enhancing remediation potential of heavy metal contaminated soils through synergistic application of microbial inoculants and legumes.

作者信息

Zheng Kang, Liu Zexun, Liu Chao, Liu Jiayi, Zhuang Jiayao

机构信息

Collaborative Innovation Center of Sustainable Forestry in Southern China of Jiangsu Province, Nanjing Forestry University, Nanjing, China.

出版信息

Front Microbiol. 2023 Sep 29;14:1272591. doi: 10.3389/fmicb.2023.1272591. eCollection 2023.

Abstract

Soil microorganisms play a crucial role in remediating contaminated soils in modern ecosystems. However, the potential of combining microorganisms with legumes to enhance the remediation of heavy metal-contaminated soils remains unexplored. To investigate this, we isolated and purified a highly efficient cadmium and lead-tolerant strain. Through soil-cultivated pot experiments with two leguminous plants ( L. and ), we studied the effects of applying this microbial agent on plant nutrient uptake of soil nutrients, heavy metal accumulation, and the dynamics of heavy metal content. Additionally, we examined the response characteristics of inter-root microbial and bacterial communities. The results demonstrated that microorganisms screened from heavy metal-contaminated soil environments exhibited strong survival and adaptability in heavy metal solutions. The use of the WZ14 strain-phytoremediation significantly increased the soil's ammonium nitrogen (AN) and organic carbon (OC) contents compared to monoculture. In addition, the lead (Pb) and cadmium (Cd) contents of the soil significantly decreased after combined remediation than those of the soil before potting. However, the remediation effects on Pb- and Cd-contaminated soils differed between the two legumes following the WZ14 inoculation. The combined restoration altered the composition of the plant inter-rhizosphere bacterial community, with the increase in the relative abundance of both Proteobacteria and Firmicutes. Overall, the combined remediation using the tolerant strain WZ14 with legumes proved advantageous. It effectively reduced the heavy metal content of the soil, minimized the risk of heavy metal migration, and enhanced heavy metal uptake, accumulation, and translocation in the legumes of and . Additionally, it improved the adaptability and resistance of both legumes, leading to an overall improvement in the soil's environmental quality. These studies can offer primary data and technical support for remediating and treating Cd and Pb in soils, as well as rehabilitating mining sites.

摘要

土壤微生物在现代生态系统中受污染土壤的修复过程中起着至关重要的作用。然而,将微生物与豆科植物结合以增强对重金属污染土壤的修复潜力仍未得到探索。为了研究这一点,我们分离并纯化了一种高效的耐镉和耐铅菌株。通过对两种豆科植物(L. 和 )进行土壤盆栽实验,我们研究了施用这种微生物制剂对植物对土壤养分的吸收、重金属积累以及重金属含量动态的影响。此外,我们还研究了根际微生物和细菌群落的响应特征。结果表明,从重金属污染土壤环境中筛选出的微生物在重金属溶液中表现出很强的生存能力和适应性。与单作相比,使用WZ14菌株进行植物修复显著增加了土壤中的铵态氮(AN)和有机碳(OC)含量。此外,联合修复后土壤中的铅(Pb)和镉(Cd)含量比盆栽前的土壤显著降低。然而,接种WZ14后,两种豆科植物对铅和镉污染土壤的修复效果有所不同。联合修复改变了植物根际细菌群落的组成,变形菌门和厚壁菌门的相对丰度均有所增加。总体而言,使用耐重金属菌株WZ14与豆科植物进行联合修复被证明是有利的。它有效地降低了土壤中的重金属含量,将重金属迁移风险降至最低,并增强了L. 和 豆科植物对重金属的吸收、积累和转运。此外,它还提高了两种豆科植物的适应性和抗性,从而整体改善了土壤环境质量。这些研究可为土壤中镉和铅的修复治理以及矿区复垦提供基础数据和技术支持。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6082/10571051/2f6a1bde95f5/fmicb-14-1272591-g001.jpg

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