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Effects of cadmium perturbation on the microbial community structure and heavy metal resistome of a tropical agricultural soil

机译:镉扰动对热带农业土壤微生物群落结构和重金属抵抗的影响

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The effects of cadmium (Cd) contamination on the microbial community structure, soil physicochemistry and heavy metal resistome of a tropical agricultural soil were evaluated in field-moist soil microcosms. A Cd-contaminated agricultural soil (SL5) and an untreated control (SL4) were compared over a period of 5 weeks. Analysis of the physicochemical properties and heavy metals content of the two microcosms revealed a statistically significant decrease in value of the soil physicochemical parameters (P0.05) and concentration of heavy metals (Cd, Pb, Cr, Zn, Fe, Cu, Se) content of the agricultural soil in SL5 microcosm. Illumina shotgun sequencing of the DNA extracted from the two microcosms showed the predominance of the phyla, classes, genera and species of Proteobacteria (37.38%), Actinobacteria (35.02%), Prevotella (6.93%), and Conexibacter woesei (8.93%) in SL4, and Proteobacteria (50.50%), Alphaproteobacteria (22.28%), Methylobacterium (9.14%), and Methylobacterium radiotolerans (12,80%) in SL5, respectively. Statistically significant (P0.05) difference between the metagenomes was observed at genus and species delineations. Functional annotation of the two metagenomes revealed diverse heavy metal resistome for the uptake, transport, efflux and detoxification of various heavy metals. It also revealed the exclusive detection in SL5 metagenome of members of RND (resistance nodulation division) protein czcCBA efflux system (czcA, czrA, czrB), CDF (cation diffusion facilitator) transporters (czcD), and genes for enzymes that protect the microbial cells against cadmium stress (sodA, sodB, ahpC). The results obtained in this study showed that Cd contamination significantly affects the soil microbial community structure and function, modifies the heavy metal resistome, alters the soil physicochemistry and results in massive loss of some autochthonous members of the community not adapted to the Cd stress.
机译:在田间湿润土壤微科上评估了镉(CD)污染对热带农业土壤的微生物群落结构,土壤物理化学和重金属耐力的影响。在5周的时间内比较了CD污染的农业土壤(SL5)和未处理的对照(SL4)。两种微观物理学的物理化学性质和重金属含量的分析揭示了土壤物理化学参数(P <0.05)和重金属浓度的统计学上显着降低(CD,Pb,Cr,Zn,Fe,Cu,Se) SL5微观农业土壤含量。来自两种微观的DNA的Illumina霰弹枪测序显示出Phyla,课程,属和种类的促射菌(37.38%),Actinobacteria(35.02%),Phivotella(6.93%),并激增(8.93%) SL4和植物体外菌(50.50%),α-α-α(22.28%),甲基杆菌(9.14%)和SL5中的甲基杆菌(12,80%)。在Genus和物种描绘中观察到统计学上显着的(P <0.05)偏心瘤之间的差异。两种偏心蛋白的功能注释显示出各种重金属的摄取,运输,流出和排毒的不同重金属耐压。它还揭示了RND(抗性染色划分)蛋白CZCCBA流出系统(CZCA,CZRA,CZRB),CDF(阳离子扩散促进剂)转运蛋白(CZCD)的蛋白质CZCCBA流出系统(CDZCD)和保护微生物细胞的基因中的独有检测对抗镉胁迫(苏打水,SODB,AHPC)。本研究获得的结果表明,CD污染显着影响土壤微生物群落结构和功能,改变重金属耐压,改变土壤物​​理化学,并导致群体的群体的大规模丧失,不适应CD胁迫。

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