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铝土矿开采影响土壤的生态生理学中的土壤胁迫因子:重金属-酸度-有机质关系

Soil stressors on ecophysiology of bauxite mine impacted soil: Heavy metal-acidity-organic matter nexus.

作者信息

Charan Kasturi, Banerjee Sonali, Mandal Jajati, Bhattacharyya Pradip

机构信息

Agricultural and Ecological Research Unit, Indian Statistical Institute, Giridih, Jharkhand, India.

School of Science, Engineering & Environment, University of Salford, Manchester, UK.

出版信息

J Environ Qual. 2025 Mar-Apr;54(2):435-449. doi: 10.1002/jeq2.20666. Epub 2025 Jan 7.

Abstract

Soil ecophysiology is adversely affected by various environmental hazards, particularly in mining regions. While there has been substantial research on the effects of coal, mica, copper (Cu), and manganese (Mn) mining on soil quality, the impact of bauxite mining operations on nearby soils has largely been overlooked in the literature. Therefore, this study aims to investigate how microbial activity and dynamics are influenced by soil stressors, such as acidity and heavy metals, in areas adjacent to active bauxite mines. Soil samples were collected from three adjacent locations of an active bauxite mine area at distances of <100 m (S1), 100-500 m (S2), and >500 m (S3). The samples contained chromium (Cr), copper (Cu), nickel (Ni), lead (Pb), zinc (Zn), manganese (Mn), and cadmium (Cd), as well as elevated acidity and aluminum (Al). These conditions adversely affected the soil microbial indicators, including fluorescein diacetate (FDA), microbial biomass carbon (MBC), and enzyme activity. The highest concentrations of labile metals (i.e., water-soluble and exchangeable) were found in soil mixed with mining waste (S1), whereas acidity and Al were highest in sparsely vegetated soil (S3). Total acidity, total potential acidity, pH-dependent acidity, and Al were significantly positively correlated. Moreover, the significant positive correlation among organic carbon (OC), acidity, Al, and microbial properties (FDA, MBC, and microbial enzymes) suggests a potential effect of OC in mitigating acidity in S3. The ratios of microbial properties with OC depicted a significant negative correlation with acidity and Al fraction, denoting that acidity and Al posed a deleterious effect on soil microbial health. The similarity percentage analysis identified acid phosphatase as the key enzyme accounting for ∼78% of the observed differences in enzyme composition across the sites. Visual MINTEQ modeling revealed that the sites were saturated with different Al-bearing minerals. Pollution load index (PI) and the geo-accumulation index (I) values identified the region as heavily contaminated (PI > 1). Finally, the health risk analysis revealed that Ni posed a potential carcinogenic risk for both adults and children.

摘要

土壤生态生理学受到各种环境危害的不利影响,在矿区尤为如此。虽然已有大量关于煤炭、云母、铜(Cu)和锰(Mn)开采对土壤质量影响的研究,但铝土矿开采作业对附近土壤的影响在文献中大多被忽视。因此,本研究旨在调查活跃铝土矿附近地区的土壤压力源(如酸度和重金属)如何影响微生物活性和动态。从一个活跃铝土矿区域的三个相邻地点采集土壤样本,距离分别为<100米(S1)、100 - 500米(S2)和>500米(S3)。样本中含有铬(Cr)、铜(Cu)、镍(Ni)、铅(Pb)、锌(Zn)、锰(Mn)和镉(Cd),以及酸度和铝(Al)的升高。这些条件对土壤微生物指标产生了不利影响,包括荧光素二乙酸酯(FDA)、微生物生物量碳(MBC)和酶活性。在与采矿废料混合的土壤(S1)中发现了最高浓度的不稳定金属(即可溶性和可交换性金属),而在植被稀疏的土壤(S3)中酸度和铝含量最高。总酸度、总潜在酸度、pH依赖性酸度和铝呈显著正相关。此外,有机碳(OC)、酸度、铝和微生物特性(FDA、MBC和微生物酶)之间的显著正相关表明,OC在减轻S3中的酸度方面具有潜在作用。微生物特性与OC的比率与酸度和铝含量呈显著负相关,表明酸度和铝对土壤微生物健康产生了有害影响。相似性百分比分析确定酸性磷酸酶是关键酶,占各采样点观察到的酶组成差异的约78%。Visual MINTEQ模型显示,各采样点被不同的含铝矿物饱和。污染负荷指数(PI)和地累积指数(I)值表明该区域受到严重污染(PI > 1)。最后,健康风险分析表明,镍对成人和儿童均构成潜在致癌风险。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6da4/11893285/528816d66e79/JEQ2-54-435-g002.jpg

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