Cadmium toxicity on communities of ammonia-oxidizing microorganisms.

IF 2.4 3区 生物学 Q2 MULTIDISCIPLINARY SCIENCES PeerJ Pub Date : 2025-02-21 eCollection Date: 2025-01-01 DOI:10.7717/peerj.18829
Huan He, Lina Dang, Qian Yang, Ran Chen, Jianmei Yang, Jinshan Li, Qiang Zhu, Jiulan Dai
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Abstract

The oxidation of ammonia to nitrite, which constitutes the initial and rate-limiting step in the nitrification process, plays a pivotal role in the transformation of ammonia within soil ecosystems. Due to its susceptibility to a range of pollutants, such as heavy metals, pesticides, and pharmaceuticals, nitrification serves as a valuable indicator in the risk assessment of chemical contaminants in soil environments. Here, we analyzed the effects of cadmium (Cd) treatment on soil potential nitrification rate (PNR), and the abundance of ammonia-oxidizing archaea (AOA) and ammonia-oxidizing bacteria (AOB) communities. The results showed that, under 1 day incubation, the soil PNR with Cd 0.5 mg kg-1 was a little higher but not statistically significant than that with zero mg kg-1. Then, the soil PNR increased with the increasing Cd concentration from 0.5 to one mg kg-1, and continuously declined from 1 to 10 mg kg-1. Moreover, we predicted the bacterial functions of samples with hormetic Cd dose (one mg kg-1) by PICURSt (Phylogenetic Investigation of Communities Reconstruction of Unobserved States), and found that the expression of protein disulfide isomerase (PDI) increased with the hormetic Cd dose. PDI is known to enhance the activity of compounds containing -SH or -S-S which can help prevent oxidative damage to membranes. The soil PNR was significantly correlated with AOA abundance rather than AOB, even the abundance of AOB was higher than that of AOA, indicating that AOA functionally predominated over AOB. Our study effectively evaluated the Cd toxicity on soil microbial community and clearly illustrated the ecological niches of AOA and AOB in the agricultural soil system studied, which will be instructive for the sustainable development of agriculture.

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镉对氨氧化微生物群落的毒性作用。
氨氧化为亚硝酸盐是硝化过程的初始和限速步骤,对土壤生态系统中氨的转化起着关键作用。由于硝化作用对重金属、农药和药物等一系列污染物的敏感性,因此在土壤环境中化学污染物的风险评估中,硝化作用是一个有价值的指标。本研究分析了镉(Cd)处理对土壤潜在硝化速率(PNR)、氨氧化古菌(AOA)和氨氧化细菌(AOB)群落丰度的影响。结果表明,在1 d的培养过程中,Cd浓度为0.5 mg kg-1的土壤PNR略高于Cd浓度为0 mg kg-1的土壤PNR,但无统计学意义。随着Cd浓度的增加,土壤PNR从0.5 mg kg-1增加到1 mg kg-1,然后从1 mg kg-1下降到10 mg kg-1。此外,通过PICURSt (Phylogenetic Investigation of Communities Reconstruction of unobobserved States)预测辐照Cd (1 mg kg-1)样品的细菌功能,发现蛋白二硫异构酶(PDI)的表达随着辐照Cd剂量的增加而增加。已知PDI可以增强含有-SH或-S-S的化合物的活性,这有助于防止膜的氧化损伤。土壤PNR与AOA丰度显著相关,AOB丰度高于AOA,表明AOA在功能上优于AOB。本研究有效评价了Cd对土壤微生物群落的毒性,明确了AOA和AOB在农业土壤系统中的生态位,对农业的可持续发展具有指导意义。
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来源期刊
PeerJ
PeerJ MULTIDISCIPLINARY SCIENCES-
CiteScore
4.70
自引率
3.70%
发文量
1665
审稿时长
10 weeks
期刊介绍: PeerJ is an open access peer-reviewed scientific journal covering research in the biological and medical sciences. At PeerJ, authors take out a lifetime publication plan (for as little as $99) which allows them to publish articles in the journal for free, forever. PeerJ has 5 Nobel Prize Winners on the Board; they have won several industry and media awards; and they are widely recognized as being one of the most interesting recent developments in academic publishing.
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